氰根桥联异金属配合物的合成、晶体结构与磁性研究
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摘要
分子磁性的研究是一门涉及化学、物理、材料和生命科学等诸多学科的新兴交叉研究领域,其主要任务是研究和阐明分子体系中自旋载体之间的磁耦合本质,揭示分子磁性与结构的关系,发现和研究复杂的磁现象,设计和合成新的分子基磁材料,如单分子磁体和单链磁体,高相变温度(Tc)磁材料、自旋交叉材料和光-磁、电-磁多功能复合材料。目前,分子磁性研究由于其广阔的应用前景和重要的理论意义,已经得到了全世界科学工作者的密切关注。本论文的主要目的在于通过选择和开发合适的氰根前躯体及各种含有磁性离子的自旋载体,研究他们之间在不同条件下的反应,来合成具有新颖结构的氰根桥联配合物,并对其结构和磁学性质进行详细的研究,以期得到性质优良的分子磁性材料。主要研究内容如下:
     1.研究了四苯基卟啉及其含有各种取代基的衍生物的锰的配合物,包括-NO2,Cl,MeO-,(CH3)2N-等,与含有两个氰根的构筑单元trans-K[M(L)(CN)2](MⅢ=Fe,Cr,Co;L=bpb2-,bpmb2-)的反应,得到了6个氰根桥联的三核三明治型(MⅢ-MnⅢ-MⅢ)配合物和4个双核FeⅢ-MnⅢ配合物。用元素分析、红外光谱等手段进行了表征,并解析了它们的单晶结构。结构研究表明,四苯基卟啉赤道方向的取代基的电性和体积对于配合物的结构具有明显的影响。磁性研究结果表明,所有氰根桥联FeⅢ-MnⅢ配合物为铁磁耦合,而CrⅢ-MnⅢ配合物中Cr离子与Mn离子间则表现为反铁磁耦合。对于Fe-Mn配合物的低温交流磁化率测量表明,该类配合物的交流磁化率的实部和虚部随温度的变化表现出明显的频率依赖性,说明此类化合物在低温下极可能是单分子磁体。研究了四苯基卟啉锰与trans-[PPh3(PhCH2)][Ru(acac)2(CN)2]的反应,得到了两个一维氰根桥联的RuⅢ-MnⅢ配合物。有意思的是两个配合物中除含有交替的Ru-Mn中性一维链以外,都含有共结晶的大的阳离子([PPh3(PhCH2)]+)和阴离子(ClO4-,PF6-)。对其磁化率和变场磁化强度的研究表明,氰根桥联RuⅢ-MnⅢ之间为铁磁耦合。交流磁化率研究发现,这两个配合物的交流磁化率的实部和虚部在3K以下表现出明显的频率依赖性。对于其磁性的进一步研究表明,在1.6K以下可观察到经典磁体的磁滞行为,从而证明这两个氰根桥联配合物为典型的单链磁体。这也是迄今为止第一例基于锰卟啉的氰根桥联杂自旋单链磁体。
     2.研究了希夫碱类锰配合物与五氰根或者六氰根构筑单元[Mg(1-CH3im)2(H2O)2Fe(CN)5(1-CH3im)]-H2O, K3[Cr(NO)(CN)5], [Et4N]3[Fe(CN)6], K3[Cr(CN)6]的反应,得到了两个四核氰根桥联的FeⅢ-MnⅢ配合物,两个七核氰根桥联FeⅢ/CrⅢ-MnⅢ配合物和三个氰根桥联二维FeⅢ-MnⅢ,CrⅢ-MnⅢ,CrⅠ-MnⅢ配合物。用元素分析、红外光谱等手段进行了表征,并解析了它们的单晶结构。结构研究表明,希夫碱配体上的取代基的位置,大小和氰根前躯体的电荷以及氰根的数目都对配合物的结构有明显的影响。其中,两个四核配合物的构型为以Fe为中心的“T”型,七核配合物则是以Fe或Cr作为体心的立方盒状构型,两种配合物中分别以ClO4-或[M(CN)6]3-(M=Fe,Cr)作为平衡离子。值得注意的是,在这几个配合物中,离子型配合物单元之间通过锰离子轴向配位水与相邻单元酚氧原子之间的氢键作用形成了一维梯子状双链结构和三维立体网状结构。磁性研究表明,所有氰根桥联Fe-Mn配合物中FeⅢ-MnⅢ之间为铁磁耦合,而CrⅢ-MnⅢ和CrⅠ-MnⅢ之间为反铁磁耦合。由于分子间相对较强的氢键磁性传递作用,使得几个氰根桥联多核配合物在低温时表现出典型的变磁行为。对于几个氰根桥联的二维配位聚合物的磁性研究表明,这几个化合物在低温下也表现出典型的三维反铁磁有序的变磁体行为。
     3.研究了trans-K[Fe(bpb)(CN)2], trans-K[Fe(bpClb)(CN)2], trans-K[Fe(bpdBrb)(CN)2], K[Ag(CN)2]和K[Au(CN)2]与十五元大环七配位二价锰配合物的反应,得到了9个氰根桥联的FeⅢ-MnⅡ,AgⅠ-MnⅡ,AuⅠ-MnⅡ配合物。用元素分析、红外光谱等手段进行了表征,并解析了它们的单晶结构。结构研究表明,这九个化合物皆为一维氰根桥联单链结构,组成为交替的Fe-Mn或Ag/Au-Mn阳离子型一维链,以阴离子ClO4-,[Ag(CN)2]-或[Au(CN)2]-作为平衡离子。磁性研究表明,Fe-Mn配合物中FeⅢ与MnⅡ之间通过氰根传递的是反铁磁耦合,而Ag/Au-Mn配合物中MnⅡ-MnⅡ间通过[Ag(CN)2]-或[Au(CN)2]-表现出很弱的反铁磁作用。
     4.设计合成了一个新的氰根前躯体trans-K[FeSalen(CN)2],并且对其结构进行了表征。以其作为氰根构筑单元与Mn(bipy)Cl2, Mn(phen)2Cl2及大环七配位二价锰配合物反应,得到了两个三核,两个一维氰根桥联FeⅢ-MnⅡ配合物。用元素分析、红外光谱等手段进行了表征,并解析了它们的单晶结构。结构研究表明,平面型大环锰配合物更易于形成氰根桥联的一维结构,而对于空间位阻比较大的联吡啶和邻非罗琳配体来说,则更易形成三核配合物。对他们的磁性研究表明,氰根桥联的FeⅢ离子与MnⅡ之间的磁耦合是反铁磁的。研究了trans-K[Fe(bpb)(CN)2],trans-K[Fe(bpmb)(CN)2]和trans-K[Fe(bpClb)(CN)2]与[Mn(acac)2]ClO4的反应,得到了四个氰根桥联FeⅢ-MnⅡ配合物。反应中,MnⅢ被还原为MnⅡ,轴向与两个氰根前躯体的氰根氮原子配位,形成三核夹心型结构。对其磁性研究表明,FeⅢ-MnⅡ之间为表现为反铁磁耦合。
     本文研究了18个氰根构筑单元与锰卟啉类配合物,锰希夫碱类配合物,平面型大环锰配合物以及其他锰化合物之间的反应,得到了四十多个具有不同结构的氰根桥联异金属配合物。通过用元素分析、红外光谱以及X-射线单晶衍射等手段进行了表征。对所有配合物的结构和磁性进行了详细的研究。为进一步探索氰根桥联配合物的合成,以及有目的的设计合成单链磁体和单分子磁体提供了大量的实验依据和研究思路。
The study of molecular magnetism is a new rising research field encompassing chemistry, physics, material science and life sciences, which the main task is to study and elucidate the magnetic coupling nature between the spin-carrier in the molecular system, reveal the correlation of structure and magnetism, find and study the complicated magnetism phenomenon, and design and synthesize new molecular-based magnetic materials, such as single-molecular magnet (SMM), single-chain magnet (SCM), high-Tc magnet, spin-crossover material, photomagnetic materials and elec-magnetic bifunctional materials, et al. It should be worth noting that, due to the wide application foreground and the important theoretical significance, the research of molecular magnetism has attracted intense attention of the molecular magnetism chemist over the world. The main purpose of this dissertation is to select and develop suitable cyanide-containing building blocks and all kinds of magnetic spin-carriers, synthesize cyanide-bridged complexes with novel structures by using them under different reaction conditions, and study their structure and magnetic properties with an aim to obtain excellent molecular magnetic materials. The main research contents are as follows:
     1. Six cyanide-bridged trinuclear sandwich-type MⅢ-MnⅢ-MⅢ(MⅢ= Fe, Cr, Co) complexes and four binuclear cyanide-bridged FeⅢ-MnⅢcomplexes have been synthesized by the reactions of six cyanide-containing building blocks trans-K[M(L)(CN)2](MⅢ= Fe, Cr, Co; L= bpb2-, bpmb2-) and five manganese(Ⅲ)-porphyrin compounds. All the complexes have been characterized by element analysis, IR spectra and X-ray diffraction. Single structure analysis reveal that both the electronic nature and the steric volume of the substituent groups coming from the equatorial plane of the porphyrin have obvious influence on the structure of the formed cyanide-bridged complexes. Investigation over magnetic properties of these heterometallic complexes reveals the ferromagnetic interaction between MnⅢand FeⅢmagnetic centers and antiferromagnetic coupling between MnⅢand CrⅢ. For the ac magnetic susceptibility measurement of cyanide-bridged FeⅢ-MnⅢcomplexes, there are obvious frequency-dependent out-of-phaseχm' signals below 3.5 K, along with a clear frequency-dependent decrease in the in-phaseχm'signals, suggesting the SMM behavior of these complexes at low temperature.
     The trans-[PPh3(PhCH2)][Ru(acac)2(CN)2] has been employed firstly to synthesize cyanide-bridged complexes, and two cyanide-bridged alternated 1:1 RuⅢ-MnⅢcomplexes structurally characterized as single chain containing co-crystallized bulk anions and cations have been successfully assembled from the reaction of this cyanide precursor and [Mn(TPP)(H2O)2]+. Systematic investigation over their magnetic properties reveals the typical single-chain magnet (SCM) behaviors for both of them. To the best of our knowledge, this is the first example of heterobimetallic porphyrin-based SCM.
     2. A series of seven new cyanide-bridged heterometallic complexes including two tetranuclear FeⅢMnⅢ3 compounds, two heptanuclear MⅢMnⅢ6 (M= Fe, Cr) compounds, and three two-dimensional M-MnⅢ(M= FeⅢ, CrⅢ, CrⅠ) networks have been successfully assembled from four polycyanidemetalates containing five or six cyanide groups and two manganese(Ⅲ) building blocks containing bicompartimental Schiff base ligands. All the complexes have been characterized by element analysis, IR spectra and X-ray diffraction. Single structure analysis reveal that the structure of the tetranuclear FeⅢMnⅢ3 complexes can be characterized as "T"-like, while the structure of the two heptanuclear ones are cage-shaped. The structural difference between these complexes demonstrates the effect of the number of charge and cyanide groups of polycyanidemetlates as well as the position and size of substituted group at the Schiff base ligand on the structure of cyanide-bridged heterometallic complexes. It is worth noting that the cyanide-bridged polynuclear complexes are self-complementary through coordinated aqua ligand from one complex and the free O4 compartment from the neighboring complex, giving supramolecular one-dimensional ladders and three-dimensional networks. Investigation over magnetic properties of all the heterometallic complexes reveals the ferromagnetic interaction between MnⅢand FeⅢmagnetic centers and antiferromagnetic coupling between MnⅢand CrⅢor CrⅠions. Due to the relatively strong intermolecular hydrogen bond interactions, the several polynuclear cyanide-bridged complexes show some characters of metamagnet behavior at low temperature. The three complexes with two-dimensional structure exhibit three-dimensional antiferromagnetic ordering with typical metamagnetic behavior at low temperature.
     3. Two mononuclear seven-coordinated macrocycle manganese(Ⅱ) compounds and five dicyanide-containing precursors have been employed as building blocks to assemble cyanide-bridged heterobimetallic complexes, resulting in nine new cyanide-bridged FeⅢ-MnⅡ, AgⅠ-MnⅡand AuⅠ-MnⅡsingle chain complexes. All the complexes have been characterized by element analysis, IR spectra and X-ray diffraction. Single X-ray diffraction analysis reveals their one-dimensional single cyanide-bridged cationic polymeric chain structure consisting of alternating units of [Mn(L)]2+(L represents the fifteen-membered ring ligands) and [Fe(L')(CN)2]" (L'= bpb2-, bpClb2- or bpdBrb2-) or [Ag/Au(CN)2]- with free CIO4- or [Ag/Au(CN)2]- as balanced anion. Investigation over magnetic properties of these five one-dimensional single chain cyanide-bridged FeⅢ-MnⅡcomplexes reveals the antiferromagnetic magnetic coupling between neighboring FeⅢand Mn" ions through the bridging cyanide group, while very weak antiferromagntic interaction can be found between the MnⅡions bridged by [Ag/Au(CN)2]-in the cyanide-bridged AgⅠ-MnⅡand AuⅠ-MnⅡcomplexes.
     4. A new cyanide-containing precursor trans-K[Fe(salen)(CN)2]CH3OH (1) has been designed, synthesized and structurally characterized. Two cyanide-bridged trinuclear FeⅢ2MnⅡcomplexes and two one-dimensional cyanide-bridged FeⅢ-Mn" complexes have been successfully assembled from compound 1 and Mn(bipy)Cl2, Mn(phen)2Cl2 or two mononuclear seven-coordinated macrocycle manganeseⅡcompounds. All the complexes have been characterized by element analysis, IR spectra and X-ray diffraction. The structural difference between these complexes reveals that the macrocycle manganese(Ⅱ) compounds are facile for forming one-dimensional complexes, while other organic ligands with large steric volume, such as bipy and phen, are more prone to construct polynuclear complexes. Investigation over magnetic properties of these heterometallic cyanide-bridged FeⅢ-MnⅡcomplexes reveals the overall antiferromagnetic interaction between neighboring FeⅢand MnⅡions through the bridging cyanide group. Four cyanide-bridged trinuclear FeⅢ-MnⅡ-FeⅢcomplexes have been obtained by the reactions of trans-K[Fe(bpb)(CN)2],trans-K[Fe(bpmb)(CN)2], trans-K[Fe(bpClb)(CN)2] and [Mn(acac)2]ClO4. The antiferromagnetic coupling nature between the cyanide-bridged FeⅢion and Mn" ion in these complexes has been found.
     In this dissertation, eighteen cyanide-containing building blocks have been employed to react with manganese(III)-porphyrin compounds, manganese(III)-Schiff-base compounds, seven-coordinated macrocycle manganese(II) compounds and other manganese(II) compounds, and over forty cyanide-bridged complexes with different structures, including molecular clusters, one-dimensional chain, and two-dimensional network, were successfully synthesized, which have been characterized by element analysis, IR spectra and X-ray diffraction. The magnetic properties of all the complexes have been studied in detail. The results of this dissertation can afford lots of valuable experiment gists and research ideas for the further investigation of the synthesis of cyanide-bridged complexes with novel structural types and the rational design and synthesis of interesting molecular-based magnetic materials, such as SMM and SCM.
引文
[1]游效曾,孟庆金,韩万书主编.配位化学进展.高等教育出版社,2001.
    [2]洪茂春,陈荣,梁文平,二十一世纪的无机化学,科学出版社,2005.
    [3]Nakatani K., Bergerat P., Codjovi E., et al. Optimization of a Molecular-Based Magnet MnCu(pbaOH)(H2O)2 (pbaOH= 2-Hydroxy-1,3-propanediylbis(oxamato)) with Tc= 30 K. Inorg. Chem.,1991,30,3977.
    [4]Friedman J. R., Sarachik M. P., Tejada J., et al. Macroscopic Measurement of Resonant Magnetization Tunneling in High-Spin Molecules. Phys. Rev. Lett.,1996,76,3830.
    [5]Thomas L., Lionti L., Ballou R, et al. Macroscopic quantum tunnelling of magnetization in a single crystal of nanomagnets. Nature,1996,383,145.
    [6]Gatteschi D., Sessoli R. Quantum Tunneling of Magnetization and Related Phenomena in Molecular Materials. Angew. Chem. Int. Ed.2003,42,268.
    [7]Ohko shi S., Fujish ima A., Hash imoto K. Transparent and Colored Magnetic Thin Films:(FeⅡxCrⅡ1-x)1.5[CrⅢ(CN)6]. J. Am. Chem.1998,120,5349.
    [8]Sato O., L yoda T., Fujish ima K., et al. Electrochemically Tunable Magnetic Phase Transition in a High-Tc Chromium Cyanide Thin Film. Science,1996,271,49.
    [9]Turnbull M. M., Sugimoto T., Thompson L. K. Molecule-based magnetic materials. Theory, techniques, and applications. American Chemical Society, Washington, DC, 1996.
    [10]马宝清.Ⅰ.4f-3d配合物的结构和磁性研究.Ⅱ.基于氮氧联吡啶的超分子组装.[博士学位论文].北京:北京大学化学与分子工程学院,2000.
    [11]Ohba M., Okawa H. Synthesis and magnetism of multi-dimensional cyanide-bridged bimetallic assemblies. Coord. Chem. Rev.2000,198,313.
    [12]Verdaguer M., Bleuzen A., Marvaud V., Vaissermann J., Seuleiman M., Desplanches C., Scuiller A., Train C., Garde R., Gelly G., Lomenech C., Rosenman I., Veillet P., Cartier C., Villain F. Molecules to build solids, high Tc molecule-based magnets by design and recent revival of cyano complexes chemistry. Coord. Chem. Rev.1999,190-192,1023.
    [13]Sieklucka B., Podgajny R., Korzeniak T., Przychodzeri P., Kania R. Supramolecular networks based on octacyanometallates of Mo and W. C. R. Chimie.2002,5,639-649.
    [14]Beltran L. M. C., Long J. R. Directed assembly of metal-cyanide cluster magnets. Acc. Chem. Res.2005,38,325.
    [15]Lescouezec R., Toma M. L., Vaissermann J., Verdaguer M., Delgado F. S., Ruiz-Perez C., Lloret F., Julve M. Design of single chain magnets through cyanide-bearing six-coordinate complexes. Coord. Chem. Rev.2005,249,2691.
    [16]寇会忠,周北川.氰根桥联配合物的结构与磁性研究.无机化学学报.2004,20,497.
    [17]Ribas J., Escuer A., Monfort M., Vicente R., Cortes R., Lezama L., Rojo T. Polynuclear NiⅡ and MnⅡ azido bridging complexes. Structural trends and magnetic behavior. Coord. Chem. Rev.1999,193-195,1027.
    [18]Gao E-Q, Yue Y-F, Bai S-Q, He Z, Zhang S-W, Yan C-H. New two-dimensional manganese(II)-azido polymers with bidentate coligands, structure and magnetic properties. Chem. Mater.2004,16,1590.
    [19]Gao E-Q, Yue Y-F, Bai S-Q, He Z, Yan C-H. From achiral ligands to chiral coordination polymers, spontaneous resolution, weak ferromagnetism, and topological ferrimagnetism. J. Am. Chem. Soc.2004,126,1419.
    [20]Papaefstathiou G. S., Perlepes S. P, Escuer A., Vicente R., Font-Bardia M., Solans X. Unique single-atom binding of pseudohalogeno ligands to four metal ions induced by their trapping into high-nuclearity cages. Angew. Chem. Int. Ed.2001,40,884.
    [21]Liu J., Meyers E. A, Cowan J. A, Shore S. G. The cyanate ion as a bridging ligand between lanthanide and transition metals. Formation of one-dimensional extended arrays {(DMF)6Ln2Ni(NCO)8} (Ln= Sm, Eu) and monomeric complexes (DMF)8Ln2Ni(NCO)8 (Ln= Sm, Eu) with three bridging cyanate ligands. Chem. Commun.1998,2043.
    [22]Sujittra Y, Jaturong P., Unchulee S., Chaveng P., van Albada G. A., Quesada M, Reedijk J. A new unique tetranuclear Cu(Ⅱ) compound with double bridging thiocyanate anions, Synthesis, X-ray structure and magnetism of [Cu4(μ1,3-NCS)6(dpyam)4(O2CH)2(H2O)2] (dpyam=di-2-pyridylamine). Inorg. Chem. Commun.2006,9,242.
    [23]Yuan M., Gao S., Sun H-L, Su G. An antiferromagnetic MnⅢ chain bridged by hydrogencyanamide,[MnⅢ(5-Brsalen)(1,3-NCNH)]n. Inorg. Chem.2004,43,8221.
    [24]Miller J. S., Manson J. L. Designer magnets containing cyanides and nitriles. Acc. Chem. Res.2001,34,563.
    [25]Miyasaka H., Nakata K., Sugiura K. I., Yamashita M., Cleace R. A three-dimensional ferrimagnet composed of mixed-valence Mn4 clusters linked by an {Mn[N(CN)2]6}4-unit. Angew. Chem. Int. Ed.2004,43,707.
    [26]Batten S. R., Murray K. S. Structure and magnetism of coordination polymers containing dicyanamide and tricyanomethanide. Coord. Chem. Rev.2003,246,103.
    [27]Decurtins S., Pellaux R., Antorrena G., Palacio F. Multifunctional coordination compounds, design and properties. Coord. Chem. Rev.1999,190-192,841.
    [28]高恩庆.桥联多核及超分子配合物的结构与性质研究.[博士学位论文].天津:南开大学化学系,2000.
    [29]Li X-J, Wang X-Y, Gao S., Cao R. Two three-dimensional metal-organic frameworks containing one-dimensional hydroxyl/carboxylate mixed bridged metal chains, syntheses, crystal structures, and magnetic properties. Inorg. Chem.2006,45,1508.
    [30]Llusar R., Uriel S., Vicent C., Clemente-Juan J. M, Coronado E., Gomez-Garcia C. J., Braida B., Canadell E. Single-component magnetic conductors based on Mo3S7 trinuclear clusters with outer dithiolate ligands. J. Am. Chem. Soc.2004,126,12076.
    [31]Coronado E., Galan-Mascaros J. R., Gmez-Garcia C. J., Laukhin V. Coexistence of ferromagnetism and metallic conductivity in a molecule-based layered compound. Nature 2000,408,447.
    [32]Ito A., Suenaga M., Ono K. Mossbauer Study of Soluble Prussian Blue,Insoluble Prussian Blue and Turnbulls Blue. J.Chem.Phys.1968,48,3597.
    [33]Ferlay S., Mallah T., Ouhaes R., Veillet P., Verdaguer M. A room-temperature organometallic magnet based on Prussian blue. Nature.1995,378,701.
    [34]Hatlevik φ., Buschmann W. E., Manson J. L., Miller J. S. Enhancement of the magnetic ordering temperature and air stability of a mixed valent vanadium hexacyanochromateⅢ magnet to 99℃ (372 K). Adv. Mater.1999,11,914.
    [35]Holmes, S. M., Girolami, G. S. Sol-Gel. Synthesis of KVⅡ[CrⅢ(CN)6]·2H2O, A crystalline molecule-based magnet with a magnetic ordering temperature above 100℃ J. Am. Chem. Soc.1999,121,5593.
    [36]Dong W., Zhu L-N, Song H-B, Liao D-Z, Jiang Z-H, Yan S-P, Cheng P., Gao S. A Prussian-blue type ferrimagnet Na[MnCr(CN)6], single crystal structure and magnetic properties. Inorg. Chem.2004,43,2465.
    [37]Lu Z., Wang X., Liu Z., Liao B., Gao S., Xiong R., Ma H., Zhang D., Zhu D. Tuning the magnetic behavior via dehydration/hydration treatment of a new ferrimagnet with the composition of K0.2Mn1.4 4Cr(CN)6·6H2O. Inorg. Chem.2006,45,999.
    [38]Zhou H-B, Zhang W., Yoshimura K., Ouyang Y., Liao D-Z, Jiang Z-H, Yan S-P, Cheng P. Structure and magnetic properties of a new ferrimagnet containing a paramagnetic [Cr(CN)5(NO)]3- building block. Chem. Commun.2005,4979.
    [39]Ohba M., Maruone N., Okawa H., Enoki T., Latour J. M. A new bimetallic ferromagnet, [Ni(en)2]3[Fe(CN)6]2·2H2O, with a rare rope-ladder chain structure. J. Am. Chem. Soc. 1994,116,11566.
    [40]Ohba M., Okawa H., Fukita N., Hashimoto Y. Bimetallic magnetic material [Ni(diamine)2]2[Fe(CN)6]X with two-dimensional network extended by FeⅢ-CN-Ni(II) linkages. J. Am. Chem. Soc.1997,119,1011.
    [41]El Fallah M. S., Rentschler E., Caneschi A., Sessoli R., Gatteschi D. A three-dimensional molecular ferrimagnet based on ferricyanide and [Ni(tren)]2+ building blocks. Angew. Chem. Int. Ed.1996,35,1947.
    [42]Langenberg K. V, Batten S. R, Berry K. J, Hockless D. C. R., Moubaraki B., Murray K. S. Structure and magnetism of a bimetallic pentanuclear cluster [(Ni(bpm)2)3-(Fe(CN)6)2]·7H2O (bpm= Bis(1-pyrazolyl)methane)). The role of the hydrogen-bonded 7H2O "cluster" in long-range magnetic ordering. Inorg. Chem.1997,36,5006.
    [43]Kou H-Z, Bu W-M, Liao D-Z, Jiang Z-H, Yan S-P, Fan Y-G, Wang G-L. Magnetic characteristics of two two-dimensional bimetallic assemblies, [Ni(diamine)2]2-[Fe(CN)6]NO3·nH2O (diamine= 1,3-diaminopropane, n= 2, ethylenediamine, n= 3), with a square molecular structure. J. Chem. Soc., Dalton Trans.1998,4161.
    [44]Kou H-Z, Gao S., Sun B-W, Zhang J. Metamagnetism of the first cyano-bridged two-dimensional brick-wall-like 4f-3d array. Chem. Mater.2001,13,1431.
    [45]Kou H-Z, Gao S., Ma B-Q, Liao D-Z. A cyano-bridged molecular magnet with a novel two-dimensional brick wall structure. Chem. Commun.2000,1309.
    [46]Liu C-M, Gao S., Kou H-Z, Zhang D-Q, Sun H-L, Zhu D-B. Synthesis, crystal structure, and magnetic properties of a three-dimensional cyano-bridged bimetallic coordination polymer with an aromatic amine capping ligand, [Cu(2,2'-dpa)]3[Cr(CN)6]2·3H2O (2,2'-dpa= 2,2'-dipicolylamine). Cryst. Growth Des.2006,6,94.
    [47]Smith J. A., Galan-Mascaros J. R., Clerac R., Dunbar K. R. {Mn(OH2)2[Mn(bpym)(H2O)]2[Fe(CN)6]2}∞, a two-dimensional ferrimagnet with a partial cubane motif. Chem. Commun.2000,1077.
    [48]Palii A. V., Ostrovsky S. M., Klokishner S. I., Tsukertlat B. S., Berlinguette C. P, Dunbar K. R., Galan-Mascaros J R. Role of the orbitally degenerate MnⅢ ions in the single-molecule magnet behavior of the cyanide cluster {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}(tmphen= 3,4,7,8-tetramethyl-1,10-phenanthroline). J. Am. Che. Soc.2004,126,16860.
    [49]Richard J. P., Leone S., Stuart R. B., Cashion J. D., Fallon G. D. The encapsulation of ferrocyanide by copper(II) complexes of tripodal tetradentate ligands. Novel H-bonding networks incorporating heptanuclear and pentanuclear heterometallic assemblies. Inorg. Chem.2001,40,4696.
    [50]Miyasaka H., Ieda H., Matsumoto N., Re N., Crescenzi R., Floriani C. Assembling bi-, tri-and pentanuclear complexes into extended structures using a desolvation reaction, synthesis, structure, and magnetic properties of manganese(Ⅲ)-Schiff-base-hexacyanoferrate polymeric compounds and their derived extended structures. Inorg. Chem.1998,37,255.
    [51]Re N., Crescenzi R., Floriani C., Miyasaka H., Matsumoto N. The synthesis and characterization of two-dimensional ferromagnetic extended structures containing high-spin (S= 5/2) and low-spin (S= 1/2) iron(III) bridged by cyanide groups. Inorg. Chem.1998,37,2717.
    [52]Saha M. K., Moron M. C., Palacio F., Bernal I. A new bimetallic intercalated 3-D assembly magnet [(323)Ni3{FeⅢ(CN)6}2]n·nH2O(323= N,N'-bis(3-aminopropyl)ethylenediamine), an unprecedented concomitant presence of meridional and facial arrangment of ferricyanide anion. Inorg Chem.2005,44,1354.
    [53]Ruiz E., Rajaraman G., Alvarez S., Gillon B., Stride J., Cerac R. Symmetry and topology determine the Mov-CN-Mn" exchange interactions in high-spin molecules. Angew. Chem. Int. Ed.2005,44,2711.
    [54]Lu T-B, Xiang H., Su C. Y, Cheng P., Mao Z-W, Ji L-N. [NiL]2[Fe(CN)6]·4H2O [L=3,10-bis(2-hydroxyethyl)-1,3,5,8,10,12-hexaazacyclotetradecane], a novel three-dimensional iron(II)-nickel(II) cyanide-bridged bimetallic assembly with a vat-like structure. New J. Chem.2001,25,216.
    [55]Coronado E., Gomez-Garc C. J., Nuez A., Ferromagnetism and chirality in two-dimensional cyanide-bridged bimetallic compounds. Inorg. Chem.2002,41,4615.
    [56]Berlinguette C. P., Vaughn D., Cannada-Vilalta C., Galan-Mascaros J. R. Dunbar K. R. A trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior, synthesis, structure, and magnetic properties of {[MnⅡ(tmphen)2]3[Mn'"(CN)6]2}.Angew. Chem. Int. Ed.2003,42,1523.
    [57]Berlinguette C. P., Dragulescu-Andrasi A., Sieber A., Guudel H-U, Achim C., Dunbar K. R. A charge-transfer-induced spin transition in a discrete complex, the role of extrinsic factors in stabilizing three electronic isomeric forms of a cyanide-bridged Co/Fe cluster. J. Am. Chem. Soc.2005,127,6766.
    [58]Richard J. P., Leone S., Kevin J. B., Fallon G. D., Moubaraki B., Murray K. S. Structure and magnetic properties of a high-spin Mn6ⅡCrⅢ cluster containing cyano bridges and Mn centres capped by pentadentate ligands. Chem. Commun.2001,333.
    [59]Miyasaka H., Matsumoto N., Okawa H., Re N., Gallo E., Floriani C. Complexes derived from the reaction of manganeseⅢ Schiff base complexes and hexacyanoferrateⅢ, syntheses, multidimensional network structures, and magnetic properties. J. Am. Chem. Soc.1996,118,981.
    [60]Miyasaka H., Takahashi H., Madanbashi T., Sugiura K-I, Clerac R., Nojiri H. Cyano-bridged MnⅢ3MⅢ (MⅢ= Fe, Cr) complexes, synthesis, structure, and magnetic properties. Inorg. Chem.2005,43,5969.
    [[61]Bonadio F., Senna M-C, Ensling J., Sieber A., Neels A., Decurtins S. Cyano-bridged structures based on [MnⅡ(N3O2-macrocycle)]2+, a synthetic, structural, and magnetic study. Inorg. Chem.2005,44,969.
    [62]Vos T. E., Miller J. S. Building blocks for 2D molecule-based magnets, the diruthenium tetrapivalate monocation [RuII/III2(O2CtBu)4]+. Angew. Chem. Int. Ed.2005,44,2416.
    [63]Thetiot F., Triki S., Pala J. S.{[CuⅡ(tn)]2[FeⅡ(CN)6]}·KCl·5H2O (tn=1,3-diaminopropane), a two-dimensional bimetallic layered material with "Cu4Fe3" defective cubane units. New J. Chem.2002,26,196.
    [64]Yan B., Chen Z. D., Wang S. X., Gao S. A novel one-dimensional chain cyano-bridged complex [Sm(DMF)4(H2O)2Mn(CN)6-H2O]n, long-range magnetic ordering, Tc= 18 K and coercive force Hc= 600 Oe. Chem. Lett.2001,350.
    [65]Ohba M., Usuki N., Fukita N., Okawa H. [Mn(en)]3[Cr(CN)6]2-4H2O, a three-dimensional dimetallic ferrimagnet (Tc= 69 K) with a defective cubane unit. Angew. Chem. Int. Ed.1999,38,1795.
    [66]Inoue K., Imai H., Ghalsasi P. S., Kikuchi K., Ohba M., Okawa H., Yakhmi J. V. A Three-dimensional ferrimagnet with a high magnetic transition temperature (Tc) of 53 K based on a chiral molecule. Angew. Chem. Int. Ed.2001,40,4242.
    [67]Ferlay S., Mallah T., Vaissermann J., Bartolome F., Veillet P., Verdaguer M. A chromiumⅢ nickel(II) cyanide-bridged ferromagnetic layered structure with corrugated sheets. Chem. Commun.1996,2481.
    [68]Kou H-Z, Liao D-Z, Cheng P., Jiang Z-H, Yan S-P, Wang G-L, Yao X-H, Wang H-G. Crystal structure and magnetic behaviour of a two-dimensional step-shaped cyano-bridged complex [Cu(dien)]3[Fe(CN)6]2-6H2O (dien= diethylenetriamine). J. Chem. Soc., Dalton Trans.1997,1503.
    [69]Kou H-Z, Gao S., Bu W-M, Liao D-Z, Ma B-Q, Jiang Z-H, Yan S-P, Fan Y-G, Wang G-L. Synthesis, crystal structure and metamagnetic properties of a two-dimensional honeycomb network based on ferricyanide and (3,10-dimethyl-1,3,5,8,10,12-hexaazacyclotetradecane) nickel(II) building blocks, J. Chem. Soc., Dalton Trans.1999,2477.
    [70]Kou H-Z, Gao S., Zhang J., Wen G-H, Su G, Zheng R. K., Zhang X. X. Unexpected assembly of a unique cyano-bridged three-dimensional Cu3Cr2 ferromagnet. J. Am. Chem. Soc.2001,123,11809.
    [71]Coronado E., Gomez-Garce C. J., Nuez A., Romero F. M., Waerenborgh J. Synthesis, Chirality, and Magnetic Properties of Bimetallic Cyanide-Bridged Two-Dimensional Ferromagnets. Chem. Mater.2006,18,2670.
    [72]Ohba M., Kaneko W., Kitagawa S., Maeda T., Mito M. Pressure Response of Three-Dimensional Cyanide-Bridged Bimetallic Magnets. J. Am. Chem. Soc.2008,130, 4475.
    [73]Avendano C., Karadas F., Hilfiger M., Shatruk M., Dunbar K. R. Cyanide Lability and Linkage Isomerism of HexacyanochromateⅢ Induced by the Co(II) Ion. Inorg. Chem. 2010,49,568.
    [74]Vostrikova K. E., Luneau D., Wernsdorfer W., Rey P., Verdaguer M. A S= 7 ground spin-state cluster built from three shells of different spin carriers ferromagnetically coupled, transition-metal ions and nitroxide free radicals. J. Am. Chem. Soc.2000,122, 718.
    [75]Costes J-P, Dahan F., Wernsdorfer W. Heterodinuclear Cu-Tb single-molecule magnet. Inorg. Chem.2006,45,5.
    [76]Costes J-P, Dahan F., Garcia-Tojal J. Dinuclear CoⅡ/GdⅢ and CoⅢ/GdⅢ complexes derived from hexadentate Schiff bases, synthesis, structure, and magnetic properties. Chem. Eur. J.2002,23,5430.
    [77]Gheorghe R., Andruh M., Costes J-P, Donnadieu B. A rational synthetic route leading to 3d-3d'-4f heterospin systems, self-assembly processes involving heterobinuclear 3d-4f complexes and hexacyanometallates. Chem. Commun.2003,2778.
    [78]Berlinguette C. P., Dunbar K. M. The step-wise assembly of an undecanuclear heterotrimetallic cyanide cluster. Chem. Commun.2005,2451.
    [79]Kou H-Z, Zou B-C, Gao S., Wang R-J. A 2D Cyano-and oxamidato-bridged heterotrimetallic CrⅢ-CuⅡ-GdⅢ complex. Angew. Chem. Int. Ed.2003,42,3288.
    [80]Kou, H-Z, Zhou B. C., Wang R-J. Heterotrimetallic 4f-3d coordination polymers, Synthesis, crystal structure, and magnetic properties. Inorg. Chem.2003,42,7658.
    [81]Schilt A. A. Mixed ligand complexes of iron(II) and III wiith cyanide and aromatic di-imincs. J. Am. Soc.,1960,82,3000.
    [82]Zhang H. H., Filipponi A., Cicco A. D., Scott M. J., Holm R. H., Hedman B., Hodgson K. O. Multiple-edge XAS studies of cyanide-bridged iron-copper molecular assemblies relevant to cyanide-inhibited heme-copper oxidases using four-body multiple-scattering analysis. J. Am. Chem. Soc.1997,119,2470.
    [83]Scott M. J., Holm R. H. Molecular assemblies containing linear and bent [FeⅢ-CN-CuⅡ] bridge unit, Synthesis, structures and relevance to cyanide-inhibited heme-copper oxidases. J. Am. Chem. Soc.1994,116,11357.
    [84]Appelt R., Vahrenkamp H. Cyanide bridged di-and tri-nuclear complexes with central CrⅢ-, MnⅢ-and CoⅢ-salen units. Inorg. Chim. Acta.2003,350,387.
    [85]Abbati G. L., Caneschi A., Cornia A., Fabretti A. C., Pozdniakova Y. A., Shchegolikhina O. I. Towards stepwise cluster assembly, a decacopper(II) complex obtained by controlled expansion of a metallasiloxane cage. Angew. Chem. Int. Ed.2002,41,4517.
    [86]Oshio H., Nnodera H., Ito T. Spectroelectrochemical studies on mixed-valence states in a cyanide-bridged molecular square:[RuⅡ2FeⅡ2(μ-CN)4(bpy)8](PF6)4·CHCl3·H2O. Chem. Eur. J.2003,9,3946.
    [87]Oshio H., Onodera H., Tamada O., Mizutani H., Hikichi T., Ito T. Cyanide-bridged Fe-Fe and Fe-Co molecular squares, structures and electrochemistry of [FeⅡ4(μ-CN)4(bpy)8](PF6)4·4H2O,[(Fe2Co2")CoⅡ(μ-CN)4(bpy)8](PF6)4-3CHCl3-2CH3 CN, and [(Fe2Co2Ⅲ)CoⅡ(μ-CN)4(bpy)8](PF6)6-CHCl3-4CH3NO2. Chem. Eur. J.2000,6, 2523.
    [88]Oshio H., Tamada O., Onodera H., Ito T., Ikoma T., Tero-Kubota S. Cyanide-bridged iron-copper molecular squares with doublet and quintet spin ground states. Inorg. Chem. 1999,38,5686.
    [89]Oshio H., Yamamoto M., Ito T. Cyanide-bridged molecular squares with ferromagnetically coupled, d and p spin system. Inorg. Chem.2002,41,5817.
    [90]Nihei M., Ui M., Yokota M., Han L., Maeda A., Kishida A., Okamoto H., Oshio H. Two-step spin conversion in a cyanide-bridged ferrous square. Angew. Chem. Int. Ed. 2005,44,6484.
    [91]Qin Z. T., Sheng T. L., Hu S. M., Wang X., Fu, R. B., Chen J. S. Designed Syntheses and Crystal Structures of Two Cis-cyanide Bridged Trinuclear Complexes. Chinese J. Struct. Chem.2009,28,1533.
    [92]Karadas F., Schelter E. J., Prosvirin A. V., Bacsa J., Dunbar K. R. A high spin molecular square based on square pyramidal CoⅡ and tetrahedral MnⅡ centers, [{MnⅡCl2}2{CoⅡ(triphos)(CN)2}2]. Chem. Commun.2005,1414.
    [93]Karadas F., Schelter E. J., Shatruk M., Prosvirin A. V, Bacsa J., Smirnov D., Ozarowski A., Krzystek J., Telser T., Dunbar K. R. A Family of Cyanide-Bridged Molecular Squares, Structural and Magnetic Properties of [{MⅡCl2}2{CoⅡ(triphos)(CN)2}2]-xCH2Cl2, M= Mn, Fe, Co, Ni, Zn. Inorg. Chem.2008, 47,2074.
    [94]Yeung W-F, Man W-L, Wong, W-T, Lau T-C, Gao S. Ferromagnetic ordering in a diamond-like cyano-bridged MnⅡ RuⅢ bimetallic coordination polymer. Angew. Chem. Int. Ed.2001,40,3031.
    [95]Yeung W-F, Lau T-C, Wang X. Y, Gao S., Szeto L., Wong W. T.2D LnⅢRuⅢ2 Compounds Constructed from trans-[Ru(acac)2(CN)2]-:Syntheses, Structures, and Magnetic Properties. Inorg. Chem.2006,45,6756.
    [96]Yeung W-F, Lau P-H, Wei H-Y, Sun H-L, Gao S, Chen Z-D, Wong W-T. Heterometallic MⅡRuⅢ2 compounds constructed from trans-[Ru(salen)(CN)2]-and trans-[Ru(acac)2(CN)2]-. Synthesis, structures, magnetic properties, and density functional theoretical study. Inorg. Chem.2005,44,6579.
    [97]Yoon J. H., Yoo H. S., Kim H. C., Yoon S. W., Suh B. J. Hong C. S. Cyanide-Bridged One-Dimensional Ferromagnetic RuⅢMnⅢ Coordination Polymer Exhibiting a Field-Induced Magnetic Phase Transition. Inorg. Chem.2009,48,816.
    [98]Toma L. M., Toma L. D., Delgado F. S., Ruiz-Perez C., Sleetten J., Cano J., Clemente-Juan J. M., Lloret F. Julve M.trans-dicyanobis(acetylacetonato)ruthenate (Ⅲ) as a precursor to build novel cyanide-bridged RuⅢ-MⅡ bimetallic compounds [M= Co and Ni]. Coord. Chem. Rev.2006,250,2176.
    [99]Matsumoto N., Sunatsuki Y., Miyasaka H., Hashimoto Y., Luneau D., Tuchagues J-P. [{Mn(salen)CN}n], The first one-dimensional chain with alternating high-spin and low-spin MnⅢ centers exhibits metamagnetism. Angew. Chem. Int. Ed.1999,38,171.
    [100]Ni Z-H, Kou H-Z, Zhang L-F, Ge C., Cui A-L, Wang R-J, Li Y., Sato O. [MnⅢ(salen)]6[FeⅢ(bpmb)(CN)2]6·7H2O:a unique cyanide-bridged nanosized molecular wheel. Angew. Chem. Ed. Int.2005,44,7742.
    [101]Ni Z-H, Kou H-Z, Zheng L., Wang R-J, Cui A-L, Sato O. [Fe(bpb)(CN)2]-as a versatile building block for the design of novel low-dimensional heterobimetallic systems, synthesis, crystal structures, and magnetic properties of cyano-bridged FeⅢ-NiⅡ complexes [(bpb)2-= 1,2-Bis(pyridine-2-carboxamido)benzenate]. Inorg. Chem.2005,44,2050.
    [102]Ni Z-H, Kou H-Z, Zheng L, Zhao Y-H, Zhang L-F, Wang R-J, Cui A-L, Sato O. Assembly of azido-or cyano-bridged binuclear complexes containing the bulky [Mn(phen)2]2+ building block, syntheses, crystal structures, and magnetic properties. Inorg. Chem.2005,44,4728.
    [103]Ni Z. H., Kou H. Z., Zhang L. F., Tangoulis V., Wernsdorfer W., Cui A. L., Sato O. Substituent Effect on Formation of Heterometallic Molecular Wheels, Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2007,46,6029.
    [104]Ni Z. H., Tao J., Wernsdorfer W., Cui A. L., Kou H. Z. Supramolecular metallomacrocycles based on trans-dicyanoferrite(III) building blocks, synthesis, crystal structure and magnetic properties. J. Chem. Soc., Dalton Trans.2009,2788.
    [105]Kou H. Z., Ni Z. H., Liu C. M., Zhang D. Q., Cui A. L. Cyanide-bridged 1D MnⅢ-FeⅢ bimetallic complexes, synthesis, crystal structure and magnetic properties. New J. Chem.,2009,33,2296.
    [106]Berseth P. A., Shores M. P., Heinrich J. L., Long J. R. High-nuclearity metal-cyanide clusters, assembly of a CrgNi6(CN)24 cage with a face-centered cubic geometry. J. Am. Chem. Soc.2000,124,9655.
    [107]Sokol J. J., Shores M. P., Long J. R. High-nuclearity chromium-nickel-cyanide clusters, an open Cr8Ni5(CN)24 cage and a C3-symmetric Cr10Ni9(CN)42 cluster incorporating three forms of cyanonickelate. Angew. Chem. Int. Ed.2001,40.236.
    [108]Yang J. Y, Shores M. P., Sokol J. J., Long J. R. High-nuclearity metal-cyanide clusters, synthesis, magnetic properties, and inclusion behavior of open-cage species incorporating [(tach)M(CN)3] (M= Cr, Fe, Co) complexes. Inorg. Chem.2003,42, 1403.
    [109]Sokol J. J., Hee A. G., Long J. F. A cyano-bridged single-molecule magnet, slow magnetic relaxation in a trigonal prismatic MnMo6(CN)18 cluster. J. Am. Chem. Soc. 2002,124,7656.
    [110]Shores M. P., Sokol J. J., Long J. R. Nickel(II)-molybdenumⅢ-cyanide clusters, synthesis and magnetic behavior of species incorporating [(Me3tacn)Mo(CN)3]. J. Am. Chem. Soc.2002,124,2279.
    [111]Sokol J. J., Shores M. P., Long J. R. Giant metal-cyanide coordination clusters, tetracapped edge-bridged cubic Cr12Ni12(CN)48 and double face-centered cubic Cr14Ni13(CN)48 species. Inorg. Chem.2002,41,3052.
    [112]Rebilly J-N, Catala L., Riviere E., Guillot R., Wernsdorfer W., Mallah T. A tetranuclear CrⅢNiⅡ3 cyano-bridged complex based on M(tacn) derivative building blocks. Inorg. Chem.2005,44,8194.
    [113]Lescouezec R., Vaissermann J., Toma L. M., Carrasco R., Lloret F., Julve M. mer-[FeⅢ(bpca)(CN)3]-:A new low-spin ironⅢ complex to build heterometallic ladder-like chains. Inorg. Chem.2004,43,2234.
    [114]Wen H-R, Wang C-F, Zuo J-L, Song Y., Zeng X-R, You X-Z. Syntheses, structures, and magnetic properties of cyano-bridged heterobimetallic complexes based on [Fe(bpca)(CN)3]-·Inorg. Chem.2006,45,582.
    [115]Wang S., Zuo J-L, Zhou H-C, Song Y, Gao S., You X-Z. Heterobimetallic complexes based on [(Tp)Fe(CN)3]-:syntheses, crystal structures and magnetic properties. Eur. J. Inorg. Chem.2004,3681.
    [116]Wang S., Zuo J-L, Gao S., Song Y., Zhou H-C, Zhang Y-Z, You X-Z. The observation of superparamagnetic behavior in molecular nanowires. J. Am. Chem. Soc.2004,126, 8900.
    [117]Wang S., Zuo J-L, Zhou H-C, Choi H. J., Ke Y, Long J. R., You X-Z. [(Tp)8(H2O)6CuⅡ6FeⅢ8(CN)24]4+:A cyanide-bridged face-centered-cubic cluster with single-molecule-magnet behavior. Angew. Chem. Int. Ed.2004,43,5940.
    [118]Kim J., Han S., Cho I-K., Choi K. Y, Heu M., Yoon S., Duh B. J. Synthesis of a cyano-bridged Fe2Mn linear unit and a Fe2Mn2 square unit by using the fac-Fe{HB(pz)3}(CN)3]- building block. Polyhedron.2004,23,1333.
    [119]Kim J., Han S., Pokhodnya K. I., Migliori J. M, Miller J. S. Cyano-bridged hexanuclear Fe4M2 (M= Ni, Co, Mn) clusters, spin-canted antiferromagnetic ordering of Fe4Ni2 cluster. Inorg. Chem.2005,44,6983.
    [120]Li D., Parkin S., Wang G, Yee G. T., Prosvirin A. V., Holmes S. M. Single-molecule magnets constructed from cyanometalates,{[Tp*FeⅢ(CN)3MⅡ(DMF)4]2[OTf]2}·2DM F (MⅡ= Co, Ni). Inorg. Chem,2005,44,4903.
    [121]Lescouezec R., Vaissermann J., Lloret F., Julve M., Verdaguer, M. Ferromagnetic coupling between low-and high-spin ironⅢ ions in the tetranuclear complex fac-{[FeⅢ{HB(pz)3}(CN)3]3FeⅢ(H2O)3}·6H2O ([HB(pz)3]-= hydrotris(1-pyrazolyl) borate). Inorg. Chem.2002,41,5943.
    [122]Costa V., Lescouezec R., Vaissermann J., Herson P., Journaux Y., Araujo M. H., Clemente-Juan J. M., Lloret F., Julve M. Synthesis, crystal structure and magnetic properties of a new cyanide-bridged ironⅢ-nickel(Ⅱ) ferromagnetic chain. Inorg. Chim. Acta.2008,361,3912.
    [123]Li D. F., Clerac R., Parkin S., Wang G. B., T. Yee G., Holmes S. M. An S=2 Cyanide-Bridged Trinuclear FeⅢ2NiⅡ Single-Molecule Magnet. Inorg. Chem.2006, 45,5251.
    [124]Wang S., Ferbinteanu M., Yamashita M. Cyanide-Bridged Felll-Mnlll Chain with Metamagnetic Properties and Significant Magnetic Anisotropy. Inorg. Chem.2007,46, 610.
    [125]Li D. F., Parkin S., Wang G. B., T. Yee G., Clerac R., Wernsdorfer W., Holmes S. M. An S=6 Cyanide-Bridged Octanuclear FeⅢ4NiⅡ4 Complex that Exhibits Slow Relaxation of the Magnetization. J. Am. Chem. Soc.2006,128,4214.
    [126]Ni Z-H, Kou H-Z, Zhang L-F, Ni W-W, Jiang Y-B, Cui A-L, Ribas J., Sato O. mer-[Fe(pcq)(CN)3]-, A novel cyanide-containing building block and its application to assembling cyanide-bridged trinuclear FeⅢ2MnⅡ complexes (pcq-= 8-(pyridine-2-carboxamido)quinoline anion). Inorg. Chem.2005,44,9631.
    [127]Kim Jae Il., Yoo H. S., Koh E. K., Kim H. C., Hong C. S. Ferrimagnetic FeⅢ-MnⅢ Zigzag Chain Formed by a New mer-Positioned Iron(III) Cyanide Precursor. Inorg. Chem.2007,46,8481.
    [128]Kim Jae Il., Yoo H. S., Koh E. K., Kim H. C., Hong C. S. Field-Induced Metamagnetic Transition in the FeⅢ-MnⅢ Bimetallic Chain Built by a New Cyanide-Bearing FeⅢ Precursor. Inorg. Chem.2007,46,10461.
    [129]Kim Jae II., Kwak H. Y, Yoon J. H., Ryu D. W., Yoo I. Y, Yang N., Cho B. K., Park J. G., Lee H., Hong C. S. Cyanide-Bridged FeⅢ-MnⅢ Bimetallic Complexes with Dimeric and Chain Structures Constructed from a Newly Made mer-Fe Tricyanide, Structures and Magnetic Properties. Inorg. Chem.2009,48,2956.
    [130]Schelter E. J., Prosvirin A. V., Reiff W. M., Dunbar K. R. Unusual magnetic metal-cyanide cubes of ReⅡ with alternating octahedral and tetrahedral corners. Angew. Chem. Int. Ed.2002,41,4912.
    [131]Schelter E. J., Prosvirin A. V., Dunbar K. R. Molecular cube of ReⅡ and MnⅡ that exhibits single-molecule magnetism. J. Am. Chem. Soc.2004,126,15004.
    [132]Zhang Y-Z, Gao S., Sun H-L, Su G, Wang Z-M, Zhang S-W. Linking cyano-bridged ladders by azide to form a layered metamagnet. Chem. Commun.2004,1906.
    [133]Zhang Y. Z, Gao S., Wang Z-M, Su G., Sun H-L, Pan F. Rational synthesis and magnetic properties of a family of low-dimensional heterometallic Cr-Mn complexes based on the versatile building block [Cr(2,2'-bipyridine)(CN)4]-. Inorg. Chem.2005, 44,4534.
    [134]Zhang Y. Z., Wang Z. M., Gao S. Three-Dimensional Heterometallic Chiral Cr-Mn Compound Constructed by Cyanide and Dicyanamide Bridges. Inorg. Chem.2006,45, 10404.
    [135]Zhang Y. Z., Wang Z. M., Gao S. Heterometallic Cr-Mn Complexes Containing Cyanide and Oxalate Bridges. Inorg. Chem.2006,45,5447.
    [136]Pan F., Wang Z. M., Gao S. Magneto-Structural Correlation in a Series of Bimetallic Alternating Chain Complexes of [CrⅢL(CN)4]n[MnⅢ(salpn)]n·nSolvents (L= 2,2'-bipy or 9,10-phen, salpn= Substituted Salicyldehyde, Solvents= Water and Methanol). Inorg. Chem.2007,46,10221.
    [137]Lescouezec R., Lloret F., Julve M., Vaissermann J., Verdaguer M. [Fe(bipy)(CN)4]-as a versatile building block for the design of heterometallic systems, synthesis, crystal structure, and magnetic properties of PPh4[FeⅢ(bipy)(CN)4]·H2O, [{FeⅢ(bipy)(CN)4}2-MⅡ(H2O)4]·4H2O, and [{FeⅢ(bipy)(CN)4}ZnⅡ]·2H2O [bipy= 2,2'-Bipyridine, M= Mn and Zn]. Inorg. Chem.2002,41,818.
    [138]Lescouezec R., Lloret F., Julve M., Vaissermann J., Verdaguer M., Llusar R., Uriel S. [Fe(Phen)(CN)4]-:a versatile building block for the design of heterometallic systems. crystal structures and magnetic properties of PPh4[Fe(Phen)(CN)4]-2H2O and [{Fe(Phen)(CN)4}2M(H2O)2]-4H2O [Phen= 1,10-phenanthroline, M= Mn(II) and Zn(II)]. Inorg. Chem.2001,40,2065.
    [139]Toma L., Toma L. M., Lescouezec R., Armentano D., De Munno G., Andruh M., Cano J., Lloret F., Julve M. Synthesis, crystal structures and magnetic properties of cyanide and phenolate-bridged [MⅢNiⅡ]2 tetranuclear complexes (M= Fe and Cr). Dalton Trans. 2005,1357.
    [140]Toma L. M., Lescouezec R., Lloret F., Julve M., Vaissermann J., Verdaguer M. Cyanide-bridged Fe(III)-Co(II) bis-double zigzag chains with a slow relaxation of the magnetization. Chem. Commun.2003,1850.
    [141]Toma L., Lescouezec R., Vaissermann J., Delgado F. S., Ruiz-Perez C., Carrasco R., Cano J., Lloret F., Julve M. Nuclearity controlled cyanide-bridged bimetallic CrⅢ-MnⅡ compounds, synthesis, crystal structures, magnetic properties and theoretical calculations. Chem. Eur. J.2004,10,6130.
    [142]Toma L. M., Delgado F. S., Ruiz-Perez C., Carrasco R., Cano J., Lloret F., Julve M. Synthesis, crystal structures and magnetic properties of single and double cyanide-bridged bimetallic Fe2ⅢCuⅡ zigzag chains. Dalton Trans.2004,2836.
    [143]Toma L., Lescouezec R., Vaissermann J., Herson P., Marvaud V., Lloret F., Julve M. [CrⅢ(L)(CN)4]-, a new building block in designing cyanide-bridged 4,2-ribbon-like chains{[CrⅢ(L)(CN)4]2Mn(H2O)2}·nH2O [L= 2-aminomethylpyridine (n= 6) and 1,10-phenanthroline (n= 4)]. New J Chem.2005,29,210.
    [144]Lescouezec R., Vaissermann J., Ruiz-Perez C., Lloret F., Carrasco R., Julve M., Verdaguer M., Bromzee Y, Gatteschi D., Wernsdorfer W. Cyanide-bridged iron(III)-cobalt(II) double zigzag ferromagnetic chains, two new molecular magnetic nanowires. Angew. Chem Int. Ed.2003,42,1483.
    [145]Kou H-Z, Zhou B. C., Gao S., Liao D-Z, Wang R-J. Pendant macrocyclic metallic building blocks for the design of cyano-bridged heterometallic complexes with 1D chain and 2D layer structures. Inorg. Chem.2003,42,5604.
    [146]Ni Z. H., Zheng L., Zhang L. F., Cui A. L., Ni W. W., Zhao C. C., Kou H. Z. Cyanido-Bridged Dimetallic Complexes Derived from ManganeseⅢ Schiff Bases and Pentacyanidonitrosylchromate(I), Synthesis, Crystal Structure and Magnetic Properties. Eur. J. Inorg. Chem.2007,1245.
    [147]Zhou H-B, Zhang W.. Yoshimura K., Ouyang Y., Liao D-Z. Jiang Z-H, Yan S-P, Cheng P. Structure and magnetic properties of a new ferrimagnet containing a paramagnetic [Cr(CN)5(NO)](?)- building block. Chem. Commun.2005.4979.
    [148]Ni W. W., Ni Z. H., Cui A. L., Liang X., Kou H. Z. Cyanide-Bridged MnⅢ-FeⅢ Bimetallic Complexes Based on the Pentacyano(1-methylimidazole)ferrate(III) Building Block, Structure and Magnetic Characterizations. Inorg. Chem.2007,46,22.
    [149]Zhao C. C., Ni W. W., Tao J., Cui A. L., Kou H. Z. Ligand-directed assembly of cyanide-bridged bimetallic FeⅢMnⅡ coordination polymers based on the pentacyanoferriteⅢ building blocks, synthesis, crystal structure and magnetic properties. CrystEngComm.2009,11,632.
    [150]Clemente-Leon M., Coronado E., Galan-Mascaros J. R., Gomez-Garcia C. J., Woike T., Clemente-Juan J. M. Bimetallic cyanide-bridged complexes based on the photochromic nitroprusside snion and paramagnetic metal complexes. Syntheses, structures, and physical characterization of the coordination compounds [Ni(en)2]4[Fe(CN)5NO]2[Fe(CN)6]·5H2O, [Ni(en)2][Fe(CN)5NO]·3H2O, [Mn(3-MeOsalen)(H2O)]2[Fe(CN)5NO], and [Mn(5-Brsalen)]2[Fe(CN)5NO]. Inorg. Chem.2001,40,87.
    [151]Przychodzen P., Lewinski K., Balanda M., Pelka R., Rams M., Wasiutynshi T., Guyard-Duhayon C., Sieklucka B. Crystal structures and magnetic properties of two low-dimensional materials constructed from [MnⅢ(salen)H2O]+ and [M(CN)g]3-/4-(M= Mo or W) precursors. Inorg. Chem.2004,43,2967.
    [152]Przychodzen P., Rams M., Guyard-Duhayon C., Sieklucka B. Antiferromagnetic coupling through cyano-bridge and H-bonds in [MnⅢ(3-OMesalophen)(H2O)2]2[MnⅢ(3-OMesalophen)(H2O)][Wv(CN)8]·2H2O. Inorg. Chem. Commun.2005,8,350.
    [153]Zhong Z. J., Seino H., Mizobe Y., Hidai M., Fujishima A., Ohkoshi S-I, Hashimoto K. A high-spin cyanide-bridged Mn9W6 cluster (S= 39/2) with a full-capped cubane structure. J. Am. Chem. Soc.2000,122,2952.
    [154]Larionova J., Gross M., Pilkington M., Andres H., Stoeckli-Evans H., Gudel H. U., Decurtins S. High-spin molecules, a novel cyano-bridged MnⅡ9MoV6 molecular cluster with a S= 51/2 ground state and ferromagnetic intercluster ordering at low temperature. Angew. Chem. Int. Ed.2002,39,1605.
    [155]Ruiz E., Rajaraman G, Alvarez S., Gillon B., Clerac R., Larionova J., Decurtins S. Symmetry and topology determine the Mov-CN-MnⅡ exchange interactions in high-spin molecules. Angew. Chem. Int. Ed.2005,44,2711.
    [156]Yoon J. H., Kim H. C., Hong C. S. Cyanide-bridged W(V)-Mn(II) bimetallic double-zigzag chains with a metamagnetic nature. Inorg. Chem.2005,44,7714-7716.
    [157]Song Y., Zhang P., Ren X-M, Shen X-F, Li Y-Z, You X-Z. Octacyanometallate-based single-molecule magnets, CoⅡ9Mv6(M= W, Mo). J. Am. Chem. Soc.2005,127,3708.
    [158]Yoon J. H., Kim H. C., Hong C. S. Cyanide-bridged W(V)-Mn(II) bimetallic double-zigzag chains with a metamagnetic nature. Inorg. Chem.2005,44,7714.
    [159]Yoon J. H., Lim J. H., Kim H. C., Hong C. S. Cyanide-Bridged Single-Molecule Magnet Constructed by an Octacoordinated [W(CN)6(bpy)]- Anion. Inorg. Chem.2006, 45,9613.
    [160]Yoon J. H., Lim J. H., Choi S. W., Kim H. C., Hong C. S. Cyanide-Bridged Wv-Co" Double-Zigzag Chain Based on an Octacoordinated W Precursor, Metamagnetism and Spin Canting. Inorg. Chem.2007,46,1529.
    [1](a) Hasobe, T., Imahori, H., Yamada, H., Sato, T., Ohkubo, K., Fukuzumi, S. Enhancement of Light Harvesting and Photocurrent Generation by ITO Electrodes Modified with meso, meso-Linked Porphyrin Oligomers. Nano lett.2003,3,409.
    (b)Lee, Y. A., Kim, J. O., Cho, T. S., Song, R., Kim, S. K. Binding of meso-Tetrakis(N-methylpyridium-4-yl)porphyrin to Triplex Oligonucleotides:Evidence for the Porphyrin Stacking in the Major Groove. J. Am. Chem. Soc.2003,125,8106.
    [2]Kojima, T., Harada, R., Nakanishi, T., Kaneko, K., Fukuzumi, S. Porphyrin Nanotubes Based on Self-Assembly of Mo(V)-Dodecaphenylporphyrin Complexes and Inclusion of Mo-Oxo Clusters:Synthesis and Characterization by X-ray Crystallography and Transmission Electron Microscopy. Chem. Mater.2007,19,51.
    [3]Imahori, H., Arimura, M., Hanada, T., Nishimura, Y., Iwao, Y., Sakata, Y., Fukuzumi, S. Photoactive Three-Dimensional Monolayers:Porphyrin-Alkanethiolate-Stabilized Gold Clusters. J. Am. Chem. Soc.2001,123,335.
    [4]Bearinger, J. P., Stone, G., Christian, A. T., Dugan, L., Hiddessen, A. L., Wu, K., Jen, J., Wu, L., Hamilton, J., Stockton, C., Hubbell, J. A. Porphyrin-Based Photocatalytic Lithography. Langmuir 2008,24,5179.
    [5]Mojzes, P., Kruglik, S. G., Baumruk, V., Turpin, P. Y. J. Phys. Chem. B 2003,107,7532. Serra, A., Siciliano, T., Filippo, E., Micocci, G., Tepore, A., Arnold, D. P., Ludovico, V. Thermally Stimulated Current Investigation of Copper Octaethylporphyrin Dimer Langmuir-Blodgett Films. Langmuir 2005,21,294.
    [6](a) Bian, Y. Z. Jiang, J. Z., Tao, Y, Choi, Michael T. M., Li, R. J., Anthony, C. H. Ng, Zhu, P. H., Pan, N., Sun, X., Arnold, D. P., Zhou, Z. Y, Li, H. W., Thomas C. W. Mak, Dennis, K. P. Ng. Tuning the Valence of the Cerium Center in (Na)phthalocyaninato and Porphyrinato Cerium Double-Deckers by Changing the Nature of the Tetrapyrrole Ligands. J. Am. Chem. Soc.2003,125,12257
    (b)Tannert, S., Ermilov, J. O., Vogel, E. A., Choi, Michael T. M., Dennis K. P. Ng, Rolder, B. The Influence of Solvent Polarity and Metalation on Energy and Electron Transfer in Porphyrin-Phthalocyanine Heterotrimers. J. Phys. Chem. B 2007,111,8053.
    [7]Kazazic, S., Klasinc, L., McGlynn, S. P., Srzicc, D., Vicente, M. G. H. Pressure-Enhanced C-H···O Interactions in Aqueous tert-Butyl Alcohol J. Phys. Chem. A 2004,108,10997.
    [8]Okamoto, K., Fukuzumi, S. Self-Promoted Electron Transfer from Cobalt(II) Porphyrin to p-Fluoranil To Produce a Dimer Radical Anion-CobaltⅢ Porphyrin Complex. J. Am. Chem. Soc.2003,125,12416.
    [9]Fukuzumi, S., Ohkubo, K., Wenbo, E., Ou, Z. P., Shao, J. G., Kadish, K. M., Hutchison, J. A., Ghiggino, K. P., Sintic, P. J., Crossley, M. J. Metal-Centered Photoinduced Electron Transfer Reduction of a GoldⅢ Porphyrin Cation Linked with a Zinc Porphyrin to Produce a Long-Lived Charge-Separated State in Nonpolar Solvents. J. Am. Chem. Soc.2003,125,14984.
    [10]Hecht, S., Ihre, H., Frechet, Jean, M. J. Porphyrin Core Star Polymers:Synthesis, Modification, and Implication for Site Isolation. J. Am. Chem. Soc.1999,121,9239.
    [11](a) Lo, P., Leng, X. B. Dennis K. P. Ng. Hetero-arrays of porphyrins and phthalocyanines. Coord. Chem. Rev.2007,251,2334.
    (b)Suijkerbuijk, Bart M. J. M., Klein, G., Robertus, J. M. Merging Porphyrins with Organometallics:Synthesis and Applications. Angew. Chem. Int. Ed.2008,47,7396.
    [12]Ikeda, C., Satake, A., Kobuke, Y. Proofs of Macrocyclization of Gable Porphyrins as Mimics of Photosynthetic Light-Harvesting Complexes. Org. Lett.2003,5,4935.
    [13]Li, B. S., Li, J., Fu, Y. Q., Bo, Z. S. Porphyrins with Four Monodisperse Oligofluorene Arms as Efficient Red Light-Emitting Materials. J. Am. Chem. Soc.2004,126,3430.
    [14]Zhou, X. L., Kang, S. W., Kumar, S., Kulkarni, R. R., Cheng, Stephen Z. D., Li, Q. Self-Assembly of Porphyrin and Fullerene Supramolecular Complex into Highly Ordered Nanostructure by Simple Thermal Annealing. Chem. Mater.2008,20,3551.
    [15]Jiang, J. Z., Dennis K. P. Ng. A Decade Journey in the Chemistry of Sandwich-Type
    Tetrapyrrolato-Rare Earth Complexes. Acc. Chem. Res.2009,42,79.
    [16]Day, P. Notes Rec. R. Soc. London.2002,56,95.
    [17]Rittenberg, D. K., Miller, J. S. Observation of Magnetic Ordering as High as 28 K for meso-Tetrakis(4-halophenyl)porphinatomanganese(III) Tetracyanoethenide, [MnTXPP][TCNE] (X) F, Br, I). Inorg. Chem.1999,38,4838.
    [18]Rittenberg, D. K., Sugiura, K. I., Sakata, Y., Mikami, S., Epstein, A. J., Miller, J. S. Large Coercivity and High Remanent Magnetization Organic-Based Magnets. Adv. Mater.2000,12,126.
    [19]Dawe, L. N., Miglioi, J., Turnbow, L., Taliaferro, M. L., Shun, W., Bagnato, J. D., Zakharov, L. N., Rheingold, A. L., Arif, A. M., Fourmigue, M., Miller, J. S., Structure and Magnetic Properties of (meso-Tetraphenylporphinato)manganese(III) Bis(dithiolato)nickelates. Inorg. Chem.2005,44,7530.
    [20]Bernot, K., Luzon, J., Sessoli, R., Vindigni, A., Thion, J., Richeter, S., Leclercq, D., Larionova, J., van der Lee, A. The Canted Antiferromagnetic Approach to Single-Chain Magnets. J. Am. Chem. Soc.2008,130,1619.
    [21]Ferlay, S., Mallah, T. R., Ouahes, P. Veillet, M. V., Nature 1995,378,701. Entley, W. R., Girolami, G. S. High-Temperature Molecular Magnets Based on Cyanovanadate Building Blocks:Spontaneous Magnetization at 230 K. Science 1995,268,397.
    [22]Holmes, S. M., Girolami, G. S. Sol-Gel Synthesis of KVⅡCrⅢ(CN)6]·2HO:A Crystalline Molecule-Based Magnet with a Magnetic Ordering Temperature above 100℃. J. Am. Chem. Soc.1999,121,5593.
    [23]Hatlevik, O., Buschmann, W. E., Manson, J. L., Miller, J. S. Enhancement of the Magnetic Ordering Temperature and Air Stability of a Mixed Valent Vanadium Hexacyanochromatelll Magnet to 99℃ (372 K). Adv. Mater.1999,11,914.
    [24](a) Kou, H. Z., Gao, S., Zhang, J., Wen, G. H., Su, G., Zheng, R. K., Zhang, X. X. Unexpected assembly of a unique cyano-bridged three-dimensional Cu3Cr2 ferromagnet. J. Am. Chem. Soc.2001,123,11809.
    (b)Kou H. Z., Zhou, B. C., Gao, S., Wang, R. J. A 2D Cyano-and Oxamidato-Bridged Heterotrimetallic CrⅢ-CuⅡ-GdⅢ Complex Angew. Chem. Int. Ed.2003,42,3288.
    (c)Kou, H. Z., Zhou, B. C., Wang, R. J. Heterotrimetallic 4f3d Coordination Polymers:Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2003,42,7658.
    (d)Kou, H. Z., Zhou, B. C., Gao, S., Liao, D. Z., Wang, R. J. Pendant Macrocyclic Metallic Building Blocks for the Design of Cyano-Bridged Heterometallic Complexes with 1D Chain and 2D Layer Structures. Inorg. Chem.2003, 42,5604.
    [25]Ohba, M., Kawa, H. O. Synthesis and magnetism of multi-dimensional cyanide-bridged bimetallic assemblies. Coord. Chem. Rev.2000,198,313.
    [26]Inoue, K., Imai, H., Ghalsasi, P. S., Kikuchi, K., Ohba, M., Okawa, H., Yakhmi, J. V. A Three-Dimensional Ferrimagnet with a High Magnetic Transition Temperature (Tc) of 53 K Based on a Chiral Molecule. Angew. Chem. Int. Ed.2001,40,4242.
    [27](a) Kashiwagi, T., Ohkoshi, S. I., Seino, H., Mizobe, Y., Hashimoto, K. Vos, T. E. Manganese(II) octacyanotungstate(V)-based magnet containing a noncoordinated aromatic molecule. J. Am. Chem. Soc.2004,126,5024. (b) Miller, J. S. Transition-Metal-Catalyzed Benzylation of Arenes and Heteroarenes Angew. Chem. Int. Ed.2005,44,241.
    [28]Glaser, T., Heidemeier, M., Weyhermuller, T., Hoffmann, R. D., Rupp, H., Muller, P. Building blocks for 2D molecule-based magnets:the diruthenium tetrapivalate monocation [RuⅡ/Ⅲ2(O2CtBu)4]+. Angew. Chem. Int. Ed.2006,45,2416.
    [29]Verdaguer, M., Bleuzen, A., Marvaud, V., Vaissermann, J., Seuleiman, M., Desplanches, C., Scuiller, A., Train, C., Garde, R., Gelly, G., Lomenech, C., Rosenman, I., Veillet, P., Cartier, C., Villain, F. Molecules to build solids:high Tc molecule-based magnets by design and recent revival of cyano complexes chemistry. Coord. Chem. Rev. 1999,190-192,1023.
    [30]Beltran, L. M. C., Long, J. R. Directed assembly of metal-cyanide cluster magnets. Acc. Chem. Res.2005,38,325.
    [31]Lescouezec, R., Marilena Toma, L., Vaissermann, J., Verdaguer, M., Delgado, F. S., Ruiz-Perez, C., Lloret, F., Julve, M. Design of single chain magnets through cyanide-bearing six-coordinate complexes. Coord. Chem. Rev.2005,249,2691.
    [32]Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior: synthesis, structure, and magnetic properties of {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}. Angew. Chem. Int. Ed.2003,42,1523. Schelter, E. J., Prosvirin, A. V., Dunbar, K. R. Molecular cube of ReⅡ and MnⅡ that exhibits single-molecule magnetism. J. Am. Chem. Soc.2004,126,15004.
    [33]Song, Y., Zhang, P., Ren, X. M., Shen, X. F., Li, Y. Z., You, X. Z. Octacyanometallate-based single-molecule magnets:CoⅡ9MV6(M= W, Mo). J. Am. Chem. Soc.2005,127,3708.
    [34]Wang, S., Zuo, J. L., Zhou, H. C., Song, Y., Gao, S., You, X. Z. Heterobimetallic complexes based on [(Tp)Fe(CN)3]-:syntheses, crystal structures and magnetic properties. Eur. J. Inorg. Chem.2004,43,3681.
    [35]Li, D. F., Parkin, S., Wang, G., Yee, G. T., Prosvirin, A. V., Holmes, S. M. Single-molecule magnets constructed from cyanometalates: {[Tp*FeⅢ(CN)3MⅡ(DMF)4]2[OTf]2}·2DMF (MⅡ= Co, Ni). Inorg. Chem.2005,44, 4903.
    [36]Palii, A. V., Ostrovsky, S. M., Klokishner, S. I., Tsukertlat, B. S., Berlinguette, C. P., Dunbar, K. R., Galan-Mascaros, J. R. Role of the orbitally degenerate MnⅢ ions in the single-molecule magnet behavior of the cyanide cluster {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}(tmphen= 3,4,7,8-tetramethyl-1,10-phenanthroline). J. Am. Chem. Soc.2004,126,16860.
    [37](a) Berlinguette, C. P., Dragulescu-Andrasi, A., Sieber, A., Guudel, H. U., Achim, C., Dunbar, K. R. A charge-transfer-induced spin transition in a discrete complex:the role of extrinsic factors in stabilizing three electronic isomeric forms of a cyanide-bridged Co/Fe cluster. J. Am. Chem. Soc.2005,127,6766. (b) Bonhommeau, S., Molnar, G., Galet, A., Zwick, A., Real, J. A., McGarvey, J. J., Bousseksou, A. One Shot Laser Pulse Induced Reversible Spin Transition in the Spin-Crossover Complex [Fe(C4H4N2){Pt(CN)4}] at Room Temperature. Angew. Chem. Int. Ed.2005,44,4069.
    (c)Nihei, M., Ui, M., Yokota, M., Han, L., Maeda, A., Kishida, H., Okamoto, H., Oshio, H. Two-step spin conversion in a cyanide-bridged ferrous square. Angew. Chem. Int. Ed.2005,44,6484.
    [38](a) Sato, O., Iyoda, T., Fujishima, A., Hashimoto, K. High-Temperature Molecular Magnets Based on Cyanovanadate Building Blocks:Spontaneous Magnetization at 230 K. Science 1996,272,704.
    (b)Sato, O., Kawakami, T., Kimura, M., Hishiya, S., Kubo, S., Einaga, Y. Electric-Field-Induced Conductance Switching in FeCo Prussian Blue Analogues. J. Am. Chem. Soc.2004,126,13176.
    (c)Escax, V., Champion, G., Arrio, M. A., Zacchigna, M., Moulin, C. C. D., Bleuzen, A. The Co Ligand Field:A Key Parameter in Photomagnetic CoFe Prussian Blue Derivatives. Angew. Chem. Int. Ed. 2005,44,4798.
    (d)Yamamoto, T., Umemura, Y., Sato, O., Einaga, Y. Observation of the Anisotropic Photoinduced Magnetization Effect in Co-Fe Prussian Blue Thin Films Fabricated by Using Clay Langmuir-Blodgett Films as a Template. J. Am. Chem. Soc. 2005,127,16065.
    [39]Moore, J. G., Lochner, E. J., Ramsey, C., Dalal, N. S., Stiegman, A. E. Transparent, Superparamagnetic KⅠxCoⅡy[FeⅢ(CN)6]-Silica Nanocomposites with Tunable Photomagnetism. Angew. Chem. Int. Ed.2003,42,2741.
    [40](a) Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. The Two-Dimensional Network Structure and Metamagnetic Properties of the 2:1 Complex of [Mn(3-MeOsalen)(H2O)]ClO4 and K3[Fe(CN)6]. Angew. Chem., Int. Ed. Engl.1995, 34,1446. (b) Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. Complexes derived from the reaction of manganeseⅢ Schiff base complexes and hexacyanoferrateⅢ:syntheses, multidimensional network structures, and magnetic properties. J. Am. Chem. Soc.1996,118,981. (c) Miyasaka, H., Ieda, H., Matsumoto, N., Re, N., Crescenzi, R., Floriani, C. Assembling bi-, tri-and pentanuclear complexes into extended structures using a desolvation reaction:synthesis, structure, and magnetic properties of manganeseⅢ-Schiff-base-hexacyanoferrate polymeric compounds and their derived extended structures. Inorg. Chem.1998,37,255. (d) Matsumoto, N., Sunatsuki, Y., Miyasaka, H., Hashimoto, Y., Luneau, D., Tuchagues, J. P. The first one-dimensional chain with alternating high-spin and low-spin MnⅢ centers exhibits metamagnetism. Angew. Chem., Int. Ed.1999,38,171.
    [41]Zhang, Y. Z., Gao, S., Sun, H. L., Su, G., Wang, Z. M., Zhang, S. W. Linking cyano-bridged ladders by azide to form a layered metamagnet. Chem. Commun.2004, 1906.
    [42](a) Kim, Jae Il., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Ferrimagnetic FeⅢ-MnⅢ Zigzag Chain Formed by a New mer-Positioned IronⅢ Cyanide Precursor. Inorg. Chem.2007,46,8481. (b) Kim, Jae Il., Yoo, H. S., Koh, E. K., Kim, H. C Hong, C. S. Field-Induced Metamagnetic Transition in the FeⅢ-MnⅢ Bimetallic Chain Built by a New Cyanide-Bearing FeⅢ Precursor. Inorg. Chem.2007,46,10461.
    [43]Miyasaka, H., Saitoh, A., Abe, S., Magnetic assemblies based on MnⅢ salen analogues. Coord. Chem. Rev.2007,251,2622. and references therein.
    [44](a) Ni, Z. H., Kou, H. Z., Zhang, L. F., Ge, C., Cui, A. L., Wang, R. J., Li, Y., Sato, O. [MnⅢ(salen)]6[FeⅢ(bpmb)(CN)2]6·7H2O:a unique cyanide-bridged nanosized molecular wheel. Angew. Chem., Ed. Int.2005,44,7742. (b) Ni, Z. H., Kou, H. Z., Zhang, L. F., Tangoulis, V., Wernsdorfer, W., Cui, A. L., Sato, O. Substituent Effect on Formation of Heterometallic Molecular Wheels:Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2007,46,6029.
    [45](a) Ni, Z. H., Kou, H. Z., Zhao, Y. H., Zheng, L., Wang, R. J., Cui, A. L., Sato, O. [Fe(bpb)(CN)2]-as a versatile building block for the design of novel low-dimensional heterobimetallic systems:synthesis, crystal structures, and magnetic properties of cyano-bridged FeⅢ-NⅢ complexes [(bpb)2-= 1,2-Bis(pyridine-2-carboxamido)benzenate]. Inorg. Chem.2005,44,2050.
    (b)Ni, Z. H., Kou, H. Z., Zheng, L., Zhao, Y. H., Zhang, L. F., Wang, R. J., Cui, A. L., Sato, O. Assembly of azido-or cyano-bridged binuclear complexes containing the bulky [Mn(phen)2]2+ building block:syntheses, crystal structures, and magnetic properties. Inorg. Chem.,2005,44,4728.
    (c)Ni, W.-W., Ni, Z.-H., Liang, X., Kou, H.-Z. Cyanide-Bridged MnⅢ-FeⅢ Bimetallic Complexes Based on the Pentacyano(1-methylimidazole)ferrate(Ⅲ) Building Block:Structure and Magnetic Characterizations. Inorg. Chem.2007,46,22.
    [46](a) Harvey, J. D., Ziegler, C. J. Manganese N-confused porphyrin reactivity:CH bond activation and meso carbon reduction. Chem. Commun.2003,2890.
    (b)Harvey, J. D., Ziegler,C. J., Telser, J., Ozarowski, A., Krzystek, J. High-Frequency and-Field EPR Investigation of a ManganeseⅢ N-Confused Porphyrin Complex:[Mn(NCTPP)(py)2]. Inorg. Chem.2005,44,4451.
    [47](a) Bohle, D. S., Chen, W. C., Hung, C. H. Metal Oxidation Promoted CH Activation in Manganese Complexes of N-Confused Porphyrin. Inorg. Chem.2002,41,3334.
    (b)Hung, S. W., Yang, F. A., Chen, J. H., Wang, S. S., Tung, J. Y. Magnetic Susceptibility and Ground-State Zero-Field Splitting in High-Spin Mononuclear ManganeseⅢ of Inverted N-Methylated Porphyrin Complexes:Mn(2-NCH3NCTPP)Br. Inorg. Chem.2008,47,7202.
    [48]Choi, H. J., Sokol, J. J., Long, J. R. Raising the Spin-Reversal Barrier in Cyano-Bridged Single-Molecule Magnets:Linear MnⅢ2MⅢ(CN)6 (M= Cr, Fe) Species Incorporating [(5-Brsalen)Mn]+ Units. Inorg. Chem.2004,43,1606.
    [49](a) Ferbinteanu, M., Miyasaka, H., Wernsdorfer, W., Nakata, K., Sugiura, K., Yamashita, M., Coulon, C., Clerac, R. Single-Chain Magnet
    (NEt4)[Mn2(5-MeOsalen)2Fe(CN)6] Made of MnⅢ-FeⅢ-MnⅢ Trimeric Single-Molecule Magnet with an S= 9/2 Spin Ground State. J. Am. Chem. Soc.2005,127,3090. (b) Huh, S., Youm, K. T., Park, Y. J., Lough, A. J., Ohba, M., Jun, M. J. Trinuclear MnⅢ-NC-FeⅢ-CN-MnⅢ Ferromagnetic System Bull. Korean. Chem. Soc.2005,26, 1031.
    [50]Adler, A. D., Longo, F. R., Shergalis, W. Mechanistic Investigations of Porphyrin Syntheses. I. Preliminary Studies on ms-Tetraphenylporphin. J. Am. Chem. Soc.1964, 86,3145.
    [51]Ray, M., Mukherjee, R., Richardson, J. F., Buchanan, R. M. The step-wise assembly of an undecanuclear heterotrimetallic cyanide cluster. J. Chem. Soc., Dalton Trans.1993, 2451.
    [52]Leung, W. H., Ma, J. X., Yam, V. W. W., Che, C. M., Poon, C. K. Syntheses, electrochemistry and reactivities of pyridine amide complexes of chromium(III) and manganese(III). J. Chem.Soc., Dalton Trans.1991,1071.
    [53]Mak, S. T., Wong, W. T., Yam, V. W. W., Lai, T. F., Che, C. M. Cobalt(III) alkyl complexes of 1,2-bis(2-pyridinecarboxamido)benzene (H2bpb) and 4,5-dichloro-1,2-bis(2-pyridinecarboxamido)benzene (H2bpc) and X-ray crystal structures of [Co(bpc)(CH2CH2CMe=CH2)(H2O)] and [Co(bpb)Et(H2O)] J. Chem.Soc., Dalton Trans.1991,1915.
    [54](a) Miyasaka, H., Ieda, H., Matsumoto, N., Sugiura, K., Yamashita, M. Structure and Magnetic Properties of the Two-Dimensional Ferrimagnet (NEt4)[Mn(salen)2Fe(CN)6]: Investigation of Magnetic Anisotropy on a Single Crystal. Inorg. Chem.2003,42,3509.
    (b)Miyasaka, H., Okawa, H., Miyazaki, A., Enoki, T. An assembly compound [K(18-crown-6)(MeOH)2][Mn(5-Clsalen)-(H2O)(MeOH)]2[Fe(CN)6]-4MeOH of isolated metal centers and conversion into a ferrimagnetic compound by desolvation [18-crown-6-1,4,7,10,13,16-hexaoxacyclooctad ecane, 5-Clsalen-N,N9-ethylenebis(5-chlorosalicylideneiminate)]. J. Chem. Soc., Dalton Trans. 1998,3991.
    [55](a) Re, N., Gallo, E., Floriani, C., Miyasaka, H., Matsumoto, N. Magnetic Properties of a One-Dimensional Ferromagnet Containing a MnⅢ-NC-FeⅢ Linkage:Synthesis and Crystal Structure of a Chainlike [Mn(acacen)Fe(CN)6]n2n-Polyanion. Inorg. Chem.1996, 35,6004.
    (b)Miyasaka, H., Okawa, H., Miyazaki, A., Enoki, T. Synthesis, Crystal and
    Network Structures, and Magnetic Properties of a Hybrid Layered Compound:[K(18-cr)(2-PrOH)2][{Mn(acacen)}2{Fe(CN)6}] (18-cr 18-Crown-6-ether, acacen= N,N'-Ethylenebis(acetylacetonylideneiminate)) Inorg. Chem.1998,37,4878.
    [56](a) Miyasaka, H., Matsumoto, N., Re, N., Gallo, E., Floriani, C. Synthesis, Crystal Structure, and Magnetic Properties of a Ferrimagnetic Layered Compound [NEt4][Mn(5-Cl-salen)]2[Fe(CN)6] (NEt4= Tetraethylammonium,5-Cl-salen= N,N'-Ethylenebis((5-chlorosalicylidene)aminato)) Inorg. Chem.1997,36,670.
    (b) Miyasaka, H., Nezu, T., Sugimoto, K., Sugiura, K., Yamashita, M., Cle'rac, R. Linear NinMnⅢ2Ni11 Tetramers:An Oligomeric Component of the MnⅢ2NiⅡ Single-Chain Magnets. Inorg. Chem.2004,43,5486.
    (c)Miyasaka, H., Nezu, T., Sugimoto, K., Sugiura, K., Yamashita, M., Clerac, R. [MnⅢ2(5-Rsaltmen)2NiⅡ(pao)2(L)]2+:An ST=3 Building Block for a Single-Chain Magnet That Behaves as a Single-Molecule Magnet. Chem. Eur.J.2005,11,1592.
    [57]Shores, M. P., Sokol, J. J., Long, J. R. Nickel(II)-molybdenumⅢ-cyanide clusters: synthesis and magnetic behavior of species incorporating [(Me3tacn)Mo(CN)3]. J. Am. Soc.2002,124,2279.
    [58]Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. A trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior: synthesis, structure, and magnetic properties of {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}. Angew. Chem. Int. Ed.2003,42,1523.
    [59]Wang, S., Zuo, J. L., Zhou, H. C., Choi, H. J., Ke, Y, Long, J. R., You, X.-Z. [(Tp)8(H2O)6CuⅡ6FeⅢ8(CN)24]4+:A cyanide-bridged face-centered-cubic cluster with single-molecule-magnet behavior. Angew. Chem. Int. Ed.2004,43,5940.
    [60]Dendrinou-Samara, C., Alexiou, M., Zaleski, C. M., Kampf, J. W., Kirk, M. L. Kessissoglou, D. P., Pecoraro, V. L. Synthesis and Magnetic Properties of a Metallacryptate that Behaves as a Single-Molecule Magnet. Angew. Chem. Int. Ed. 2003,42,3763.
    [61]Zaleski, C. M., Depperman, E. C., Kampf, J. W., Kirk, M L., Pecoraro, V. L. Synthesis, Structure, and Magnetic Properties of a Large Lanthanide-Transition-Metal Single-Molecule Magne Angew. Chem. Int. Ed.2004,43,3912.
    [62]Caneschi, A., Gatteschi, D., Lalioti, N., Sangregorio, C., Sessoli, R., Venturi, G.,
    Vindigni, A., Rettori, A., Pini, M. G., Novak, M. A. Cobalt(ii)-Nitronyl Nitroxide Chains as Molecular Magnetic Nanowires. Angew. Chem. Int. Ed.2001,40,1760.
    [63](a) Miyasaka, H., Madanbashi, T., Sugimoto, K., Nakazawa, Y., Wernsdorfer, W., Sugimoto, K., Yamashita, M., Coulon C., Clerac, R. Single-Chain Magnet Behavior in an AlternatedOne-Dimensional Assembly of a MnⅢ Schiff-Base Complex anda TCNQ Radical. Chem. Eur. J.,2006,12,7028.
    (b)Lecren, L., Wernsdorfer, W., Li, Y. G., Vindigni, A., Miyasaka H., Clerac, R. One-Dimensional Supramolecular Organization of Single-Molecule Magnets. J. Am. Chem. Soc.,2007,129,5045.
    (c)Miyasaka, H., Julve, M., Yamashita M., Clerac, R. Slow Dynamics of the Magnetization in One-Dimensional Coordination Polymers:Single-Chain Magnets. Inorg. Chem.,2009,48,3420.
    [64](a) Lescouezec, R., Vaissermann, J., Ruiz-Perez, C., Lloret, F., Carrasco, R., Julve, M., Verdaguer, M., Dromzee, Y, Gatteschi, D., Wernsdorfer, W. Cyanide-bridged iron(III)-cobalt(II) double zigzag ferromagnetic chains:two new molecular magnetic nanowires. Angew. Chem. Int. Ed.2003,42,1483.
    (b)Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. [Fe(bpym)(CN)4]-:A New Building Block for Designing Single-Chain Magnets. J. Am. Chem. Soc.2006,128,4842.
    [65](a) Wang, S., Zuo, J. L., Gao, S., Song, Y, Zhou, H. C., Zhang Y Z., You, X. Z. The Observation of Superparamagnetic Behavior in Molecular Nanowires. J. Am. Chem. Soc.,2004,126,8900,
    (b)Liu, T. F., Fu, D., Gao, S., Zhang, Y. Z., Sun, H. L., Su, G, Liu, Y J. An Azide-Bridged Homospin Single-Chain Magnet: [Co(2,2'-bithiazoline)(N3)2]n. J. Am. Chem. Soc.2003,125,13976
    (c)Xu,H.B.,Wang, B. W., Pan, F., Wang, Z. M., Gao, S. Stringing Oxo-Centered Trinuclear [MnⅢ3O] Units into Single-Chain Magnets with Formate or Azide Linkers. Angew. Chem. Int. Ed.2007, 46,7388.
    [66](a) Lecren, L., Roubeau, O., Coulon, C., Li, Y G., Goff, X. L., Wernsdorfer, W., Miyasaka, H., Clerac, R. Slow relaxation in a one-dimensional rational assembly of antiferromagnetically-coupled Mn4 single-moleculemagnets. J. Am. Chem. Soc.2005, 127,17353,
    (b)Bai, Y L., Tao, J., Wernsdorfer, W., Sato, O., Huang, R. B., Zheng, L. S. Coexistence of Magnetization Relaxation and Dielectric Relaxation in a Single-Chain Magnet. J. Am. Chem. Soc.2006,128,16428.
    [67]Bernot, K., Bogani, L., Caneschi, A., Gatteschi, D., Sessoli, R. A Family of Rare-Earth-Based Single Chain Magnets:Playing with Anisotropy. J. Am. Chem. Soc. 2006,128,7947.
    [68](a) Kajiwara, T., Nakano, M., Kaneko, Y., Takaishi, S., Ito, T., Yamashita, M., Kamiyama, A. I., Nojiri, H., Ono, Y, Kojima, N. J. Am. Chem. Soc.,2005,127,10050.
    (b)Yoon, J. H., Ryu, D. W., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. An End-On Azide-Bridged Antiferromagnetic Single-Chain Magnet Involving Spin Canting and Field-Induced Two-Step Magnetic Transitions. Chem. Eur. J.2009,15,3661.
    [69](a) Sun, Z. M., Prosvirin, A. V., Zao, H. H., Mao, J. G., Dunbar, K. R. New type of single chain magnet based on spin canting in an antiferromagnetically coupled Co(II) chain. J. Appl. Phys.,2005,97,10B305.
    (b)Palii, A. V., Reu, O. S., Ostrovsky, S. M., Klokishner, S. I., Tsukerblat, B. S., Sun, Z. M., Mao, J. G., Prosvirin, A. V., Zhao, H. H., Dunbar, K. R. A Highly Anisotropic Cobalt(II)-Based Single-Chain Magnet: Exploration of Spin Canting in an Antiferromagnetic Array. J. Am. Chem. Soc.2008, 130,14729.
    (b)Zhang, X. M., Hao, Z. M., Zhang, W. X., Chen, X. M. Dehydration-Induced Conversion from a Single-Chain Magnet into a Metamagnet in a Homometallic Nanoporous Metal-Organic Framework. Angew. Chem. Int. Ed.2007,46, 3456.
    [70]Miyasaka, H., Saitoh, A., Abe, S. Magnetic assemblies based on Mn(III) salen analogues. Coord. Chem. Rev.2007,251,2622. and references therein.
    [71]Cohen, I. A., Ostfeld, D. The Unusual Magnetic Properties of an Imidazolate Bridged Polymer of an Iron(III) Hemin. ACS Symp. Ser.1974,5,221, (b) Landrum, J. T., Hatano, K., Robert Scheidt, W., Reed, C. A. Imidazolate complexes of iron and manganese tetraphenylporphyrins J. Am. Chem. Soc.,1980,102,6729, (c) Koch, C. A. Reed, C. A. Ferromagnetic coupling via imidazolate in an iron(III)-porphyrin-dicopper(Ⅱ) system. J. Am. Chem. Soc.1989,111,7645.
    [72]Miller, J. S. Organometallic-and Organic-Based Magnets:New Chemistry and New Materials for the New Millennium. Inorg. Chem.2000,39,4392, and references cited therein
    [73]Bernot, K., Luzon, J., Sessoli, R., Vindigni, A., Thion, J., Richeter, S., Leclercq, D., Larionova, J., van der Lee, A. The Canted Antiferromagnetic Approach to Single-Chain Magnets. J. Am. Chem. Soc.2008,130,1619.
    [74](a) Yeung, W. F., Man, W. L., Wong, W. T., Lau, T. C., Gao, S. Ferromagnetic ordering in a diamond-like cyano-bridged MnⅡRuⅢ bimetallic coordination polymer. Angew. Chem. Int. Ed.2001,40,3031.
    (b)Toma, L. M., Toma, L. D., Delgado, F. S., Ruiz-Perez, C., Sleetten, J., Cano, J., Clemente-Juan, J. M., Lloret, F., Julve, M. Trans-dicyanobis(acetylacetonato)ruthenate(III) as a precursor to build novel cyanide-bridged RuIII-MⅡ bimetallic compounds [M= Co and Ni]. Coord. Chem. Rev. 2006,250,2176.
    [75]Yoon, J. H., Yoo, H. S., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. Cyanide-Bridged One-Dimensional Ferromagnetic RuIIIMnⅢ Coordination Polymer Exhibiting a Field-Induced Magnetic Phase Transition. Inorg. Chem.2009,48,816.
    [76]Drillon, M., Coronado, E., Beltran, D., Georges, R. Chem. Phys.1983,79,449. This method is valid for pure clasical spins. Here, MnⅢ ion was assumed to act as classical spin carrier with SMn= 2, and the quantum spin of RuIII ion is 1/2, leading to an effective alternating chain with SMn= 2 and SRu= 1/2.
    [1]Kahn, O. Molecular Magnetism, VCH:Weinheim, Germany,1993.
    [2](a) Coronado, E., Galan-Mascaros, J. R., Gomez-Garcia, C. J., Laukhin, V. Coexistence of ferromagnetism and metallic conductivity in a molecule-based layered compound. Nature 2000,408,447.
    (b)Sato, O., Kawakami, T., Kimura, M., Hishiya, S., Kubo, S., Einaga, Y. Electric-Field-Induced Conductance Switching in FeCo Prussian Blue Analogues. J. Am. Chem. Soc.2004,126,13176.
    (c)Berlinguette, C. P., Dragulescu-Andrasi, A., Sieber, A., Galan-Mascaros, J. R., Gudel, H.-U., Achim, C., Dunbar, K. R. A Charge-Transfer-Induced Spin Transition in the Discrete Cyanide-Bridged Complex{[Co(tmphen)2]3[Fe(CN)6]2}. J. Am. Chem. Soc.2004,126, 6222.
    (d)Shatruk, M., Dragulescu-Andrasi, A., Chambers, K. E., Stoian, S. A., Bominaar, E. L., Achim, C., Dunbar, K. R. Properties of Prussian Blue Materials Manifested in Molecular Complexes:Observation of Cyanide Linkage Isomerism and Spin-Crossover Behavior in Pentanuclear Cyanide Clusters. J. Am. Chem. Soc.2007, 129,6104.
    [3](a) Ferlay, S., Mallah, T. R., Ouahes, P. Veillet, M. V. A room-temperature organometallic magnet based on Prussian blue. Nature 1995,378,701.
    (b)Entley, W. R., Girolami, G. S. High-Temperature Molecular Magnets Based on Cyanovanadate Building Blocks:Spontaneous Magnetization at 230 K. Science 1995,268,397.
    [4](a) Holmes, S. M., Girolami, G. S. Synthesis of KVⅡ[CrⅢ(CN)6]·2H2O:A crystalline molecule-based magnet with a magnetic ordering temperature above 100℃. J. Am. Chem. Soc.1999,121,5593.
    (b)Li, D. F., Clerac, R., Parkin, S., Wang, G. B., Yee, G T., Holmes, S. M. Inorg. Chem.2006,45,5251.
    (c)Li, D., Parkin, S., Wang, G., Yee, G. T. Clerac, R., Wernsdorfer, W., Holmes, S. M. An S= 6 Cyanide-Bridged Octanuclear FeⅢ4NiⅡ4 Complex that Exhibits Slow Relaxation of the Magnetization. J. Am. Chem. Soc.2006,128,4214.
    [5]Hatlevik, O., Buschmann, W. E., Manson, J. L., Miller, J. S. Enhancement of the magnetic ordering temperature and air stability of a mixed valent vanadium hexacyanochromate(III) magnet to 99℃ (372 K). Adv. Mater.1999,11,914.
    [6](a) Kou, H. Z., Gao, S., Zhang, J., Wen, G. H., Su, G., Zheng, R. K., Zhang, X. X. Unexpected assembly of a unique cyano-bridged three-dimensional Cu3Cr2 ferromagnet. J. Am. Chem. Soc.2001,123,11809.
    (b)Kou H. Z., Zhou, B. C., Gao, S., Wang, R. J. A 2D Cyano-and oxamidato-bridged heterotrimetallic CrⅢ-CuⅡ-GdⅢ complex. Angew. Chem. Int. Ed.2003,42,3288.
    (c)Kou, H. Z., Zhou, B. C., Wang, R. J. Heterotrimetallic 4f3d Coordination Polymers:Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2003,42,7658.
    (d)Ni, Z. H., Kou, H. Z., Zhang, L. F., Ge, C., Cui, A. L. Wang, R. J., Li, Y., Sato O. [MnⅢ(salen)]6[FeⅢ(bpmb)(CN)2]6-7 H2O:a unique cyanide-bridged nanosized molecular wheel. Angew. Chem., Int. Ed. 2005,44,7742.
    [7](a) Ohba, M., Kawa, H. O. Synthesis and magnetism of multi-dimensional cyanide-bridged bimetallic assemblies. Coord. Chem. Rev.2000,198,313.
    (b)Ghalsasi, P. S., Kikuchi, K., Ohba, M., Okawa, H., Yakhmi, J. V. A Three-Dimensional Ferrimagnet with a High Magnetic Transition Temperature (Tc) of 53 K Based on a Chiral Molecule. Angew. Chem. Int. Ed.2001,40,4242.
    [8](a) Kurmoo, M., Kumagai, H. M., Hughes, S., J. Kepert, C. Reversible Guest Exchange and Ferrimagnetism (Tc= 60.5 K) in a Porous Cobalt(II)-Hydroxide Layer Structure Pillared with trans-1,4-Cyclohexanedicarboxylate. Inorg. Chem.2003,42,6709.
    (b)Lu, Z., Wang X., Liu Z., Liao B., Gao, S., Xiong, R., Ma, H., Zhang, D., Zhu, D. Tuning the Magnetic Behavior via Dehydration/Hydration Treatment of a New Ferrimagnet with the Composition of K0.2Mn1.4Cr(CN)6·6H2O. Inorg. Chem.2006,45,999.
    [9](a) Kashiwagi, T., Ohkoshi, S. I., Seino, H., Mizobe, Y., Hashimoto, K. Manganese(II) octacyanotungstate(V)-based magnet containing a noncoordinated aromatic molecule. J. Am. Chem. Soc.2004,126,5024.
    (b)Vos, T. E., Miller, J. S. Angew. Chem. Int. Ed. 2005,44,241.
    (c)Glaser, T., Heidemeier, M., Weyhermuller, T., Hoffmann, R. D., Rupp, H., Muller, P. Building blocks for 2D molecule-based magnets:the diruthenium tetrapivalate monocation [RuⅡ/Ⅲ2(O2CtBu)4]+. Angew. Chem. Int. Ed.2006,45,2416.
    [10](a) Niel, V., Thompson, A. L., Munoz, M. C., Galet, A., Goeta, A. E., Real, J. A. Crystalline-State Reaction with Allosteric Effect in Spin-Crossover, Interpenetrated Networks with Magnetic and Optical Bistability Angew. Chem., Int. Ed.2003,42,3760.
    (b)Molnar, G., Niel, V., Gaspar, A. B., Real, J. A., Zwick, A., Bousseksou, A., McGarvey, J. J. Vibrational Spectroscopy of Cyanide-Bridged, Iron(II) Spin-Crossover Coordination Polymers:Estimation of Vibrational Contributions to the Entropy Change Associated with the Spin Transition. J. Phys. Chem. B 2002,106,9701.
    (c)Molnar, G., Niel, V., Real, J. A., Dubrovinsky, L., Bousseksou, A., McGarvey, J. J. Raman Spectroscopic Study of Pressure Effects on the Spin-Crossover Coordination Polymers Fe(Pyrazine)[M(CN)4]-2H2O (M= Ni, Pd, Pt). First Observation of a Piezo-Hysteresis Loop at Room Temperature. J. Phys. Chem. B 2003,107,3149.
    (d)Galet, A., Munoz, M. C., Real, J. A. Fe(3CNpy)2[Cu(3CNpy)(i-CN)2]2:a One-Dimensional Cyanide-Based Spin-Crossover Coordination Polymer. Inorg. Chem.2006,45,4583.
    (e)Agusti, G, Munoz, M. C., Real, J. A. Spin-Crossover Behavior in Cyanide-bridged Iron(Ⅱ)-Gold(Ⅰ) Bimetallic 2D Hofmann-like Metal-Organic Framework. Inorg. Chem.2008,47,2552.
    (f) Agusti, G., Munoz, M. C., Gaspar, A. B., Real, J. Spin-Crossover Behavior in Cyanide-Bridged Iron(Ⅱ)-Copper(Ⅰ) Bimetallic 1-3D Metal-Organic Frameworks. A. Inorg. Chem.2009,48,3371.
    [11](a) Verdaguer, M., Bleuzen, A., Marvaud, V., Vaissermann, J., Seuleiman, M., Desplanches, C., Scuiller, A., Train, C., Garde, R., Gelly, G., Lomenech, C., Rosenman, I., Veillet, P., Cartier, C., Villain, F. Molecules to build solids:high Tc molecule-based magnets by design and recent revival of cyano complexes chemistry. Coord. Chem. Rev. 1999,190-192,1023.
    (b)Beltran, L. M. C., Long, J. R. Directed assembly of metal-cyanide cluster magnets. Acc. Chem. Res.,2005,38,325.
    (c)Sokol, J. J., Hee, A. G., Long, J. R. A cyano-bridged single-molecule magnet:slow magnetic relaxation in a trigonal prismatic MnMo6(CN)18 cluster. J. Am. Chem. Soc.2002,124,7656.
    (d)Choi, H. J., Sokol, J. J., Long, J. R. Cyano-Bridged Single-Molecule Magnets:Linear MnⅢ2MⅢ(CN)6 (M= Cr, Fe) Species Incorporating [(5-Brsalen)Mn]+ Units. Inorg. Chem.2004,43,1606
    [12](a) Sato, O. Optically Switchable Molecular Solids:Photoinduced Spin-Crossover, Photochromism, and Photoinduced Magnetization. Acc. Chem. Res.2003,36,692.
    (b) Herrera, J. M., Marvaud, V., Verdaguer, M., Marrot, J., Kalisz, M., Mathoniere, C. Reversible Photoinduced Magnetic Properties in the Heptanuclear Complex [Mo'V(CN)2(CNCuL)6]8+:A Photomagnetic High-Spin Molecule. Angew. Chem., Int. Ed.2004,43,5467.
    (c)Long, J., Chamoreau, L. M., Mathoniere, C., Marvaud, V. Photoswitchable Heterotrimetallic Chain Based on Octacyanomolybdate, Copper, and Nickel:Synthesis, Characterization, and Photomagnetic Properties. Inorg. Chem.2009, 48,22.
    (d)Bleuzen, A., Marvaud, V., Mathoniere, C., Sieklucka, B., Verdaguer, M. Photomagnetism in Clusters and Extended Molecule-Based Magnets. Inorg. Chem. 2009,48,3453. and references therein.
    [13](a) Lescouezec, R., Marilena Toma, L., Vaissermann, J., Verdaguer, M., Delgado, F. S., Ruiz-Perez, C., Lloret, F., Julve, M. Design of single chain magnets through cyanide-bearing six-coordinate complexes. Coord. Chem. Rev.2005,249,2691.
    (b) Rebilly, J. N., Mallah, T. Synthesis of Single-molecule Magnets Using Metallocyanates. Struct. bond.2006,122,103.
    [14](a) Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. Trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior: synthesis, structure, and magnetic properties of {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}. Angew. Chem. Int. Ed.2003,42,1523.
    (b)Schelter, E. J., Prosvirin, A. V., Dunbar, K. R. Molecular cube of Re(II) and Mn(II) that exhibits single-molecule magnetism. J. Am. Chem. Soc.2004,126,15004.
    (c)Atanasov, M., Comba, P., Daul, C. A. Combined Ligand Field and Density Functional Theory Analysis of the Magnetic Anisotropy in Oligonuclear Complexes Based on FeⅢ-CN-MⅡ Exchange-Coupled Pairs. Inorg. Chem. 2008,47,2449.
    (d)Atanasov, M., Busche, C., Comba, P., Hallak, F. E., Martin, B., Rajaraman, G., Slageren, J. van, Wadepohl, H., Trinuclear{M1}CN{M2}2 Complexes (M,= CrⅢ, FeⅢ, CoⅢ, M2= CuⅡ, NiⅡ, MnⅡ). Are Single Molecule Magnets Predictable? Inorg. Chem.2008,47,8112.
    [15](a) Wang, S., Zuo, J. L., Zhou, H. C., Song, Y., Gao, S., You, X. Z. Heterobimetallic complexes based on [(Tp)Fe(CN)3]-:syntheses, crystal structures and magnetic properties. Eur. J. Inorg. Chem.2004,43,3681.
    (b)Song, Y., Zhang, P., Ren, X. M., Shen, X. F., Li, Y. Z., You, X. Z. Octacyanometallate-based single-molecule magnets: CoⅡ9Mv6(M= W, Mo). J. Am. Chem. Soc.2005,127,3708.
    [16](a) Li, D. F., Parkin, S., Wang, G., Yee, G. T., Prosvirin, A. V., Holmes, S. M. Single-molecule magnets constructed from cyanometalates: {[Tp*FeⅢ(CN)3M"(DMF)4]2[OTf]2}·2DMF (MⅡ= Co, Ni). Inorg. Chem.2005,44, 4903.
    (b)Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. [Fe(bpym)(CN)4]-:A New Building Block for Designing Single-Chain Magnets. J. Am. Chem. Soc.2006, 128,4842.
    [17]Tregenna-Piggott, P. L. W., Sheptyakov, D., Keller, L., Klokishner, S. L., Ostrovsky, S. M., Palii, A. V., Reu, O. S., Bendix, J., Brock-Nannestad, T., Pedersen, K., Weihe, H., Mutka, H. Single-Ion Anisotropy and Exchange Interactions in the Cyano-Bridged Trimers MnⅢ2MⅢ(CN)6 (MⅢ= Co, Cr, Fe) Species Incorporating [Mn(5-Brsalen)]+ Units:An Inelastic Neutron Scattering and Magnetic Susceptibility Study. Inorg. Chem. 2009,48,128.
    [18]Palii, A. V., Ostrovsky, S. M., Klokishner, S. I., Tsukertlat, B. S., Berlinguette, C. P., Dunbar, K. R., Galan-Mascaros, J. R. Role of the orbitally degenerate MnⅢ ions in the single-molecule magnet behavior of the cyanide cluster {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}(tmphen= 3,4,7,8-tetramethyl-1,10-phenanthroline). J. Am. Chem. Soc.2004,126,16860.
    [19](a) Berlinguette, C. P., Dragulescu-Andrasi, A., Sieber, A., Guudel, H. U., Achim, C., Dunbar, K. R. A charge-transfer-induced spin transition in a discrete complex:the role of extrinsic factors in stabilizing three electronic isomeric forms of a cyanide-bridged Co/Fe cluster. J. Am. Chem. Soc.2005,127,6766.
    (b)Bonhommeau, S., Molnar, G., Galet, A., Zwick, A., Real, J. A., McGarvey, J. J., Bousseksou, A. One Shot Laser Pulse Induced Reversible Spin Transition in the Spin-Crossover Complex [Fe(C4H4N2){Pt(CN)4}] at Room Temperature. Angew. Chem. Int. Ed.2005,44,4069.
    (c)Nihei, M., Ui, M., Yokota, M., Han, L., Maeda, A., Kishida, H., Okamoto, H., Oshio, H. Two-step spin conversion in a cyanide-bridged ferrous square. Angew. Chem. Int. Ed.2005,44,6484.
    [20](a) Sato, O., Iyoda, T., Fujishima, A., Hashimoto, K. Photoinduced Magnetization of a Cobalt-Iron Cyanide. Science 1996,272,704.
    (b)Sato, O., Kawakami, T., Kimura, M., Hishiya, S., Kubo, S., Einaga, Y. Electric-Field-Induced Conductance Switching in FeCo Prussian Blue Analogues. J. Am. Chem. Soc.2004,126,13176.
    (c)Escax, V., Champion, G., Arrio, M. A., Zacchigna, M., Moulin, C. C. D., Bleuzen, A. The Co Ligand Field:A Key Parameter in Photomagnetic CoFe Prussian Blue Derivatives. Angew. Chem. Int. Ed.2005,44,4798.
    (d)Yamamoto, T., Umemura, Y., Sato, O., Einaga, Y. Observation of the Anisotropic Photoinduced Magnetization Effect in Co-Fe Prussian Blue Thin Films Fabricated by Using Clay Langmuir-Blodgett Films as a Template. J. Am. Chem. Soc.2005,127,16065.
    [21](a) Moore, J. G., Lochner, E. J., Ramsey, C., Dalal, N. S., Stiegman, A. E. Transparent, Superparamagnetic KⅠxCoⅡy[FeⅢ(CN)6]-Silica Nanocomposites with Tunable Photomagnetism. Angew. Chem. Int. Ed.2003,42,2741.
    [22](a) Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. The Two-Dimensional Network Structure and Metamagnetic Properties of the 2:1 Complex of [Mn(3-MeOsalen)(H2O)]ClO4 and K3[Fe(CN)6]. Angew. Chem., Int. Ed. Engl.1995, 34,1446.
    (b)Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. Complexes derived from the reaction of manganeseⅢ Schiff base complexes and hexacyanoferrateⅢ:syntheses, multidimensional network structures, and magnetic properties. J. Am. Chem. Soc.1996,118,981.
    (c)Miyasaka, H., Ieda, H., Matsumoto, N., Re, N., Crescenzi, R., Floriani, C. Assembling bi-, tri-and pentanuclear complexes into extended structures using a desolvation reaction:synthesis, structure, and magnetic properties of manganese(III)-Schiff-base-hexacyano ferrate polymeric compounds and their derived extended structures. Inorg. Chem.1998, 37,255.
    (d)Matsumoto, N., Sunatsuki, Y., Miyasaka, H., Hashimoto, Y., Luneau, D., Tuchagues, J. P. The first one-dimensional chain with alternating high-spin and low-spin MnⅢ centers exhibits metamagnetism. Angew. Chem., Int. Ed.1999,38,171.
    (e)Miyasaka, H., Takahashi, H., Madanbashi, H., Sugiura, K., Clerac, R., Nojiri, H. Cyano-bridged MnⅢ3MⅢ (MⅢ= Fe, Cr) complexes:synthesis, structure, and magnetic properties. Inorg. Chem.2005,44,5969.
    (f)Miyasaka, H., Julve, M., Yamashita, M., Clerac, R. Slow Dynamics of the Magnetization in One-Dimensional Coordination Polymers:Single-Chain Magnets. Inorg. Chem.2009,48,3420.
    [23](a) Zhang, Y. Z., Gao, S., Sun, H. L., Su, G., Wang, Z. M., Zhang, S. W. Linking cyano-bridged ladders by azide to form a layered metamagnet. Chem. Commun.2004, 1906.
    (b)Yeung, W. F., Lau, P. H., Wang, X. Y., Gao, S., Szeto, L., Wong, W. T.2D LnⅢRuⅢ2 Compounds Constructed from trans-[Ru(acac)2(CN)2]-. Syntheses, Structures, and Magnetic Properties. Inorg. Chem.2006,45,6756.
    (c)Jiang, L., Choi, H. J., Feng, X. L., Lu T. B., Long, J. R. Syntheses, Structures, and Magnetic Properties of the Face-Centered Cubic Clusters [Tp8(H2O)12M6Fe8(CN)24]4+ (M= Co, Ni). Inorg. Chem. 2007,46,2181.
    [24](a) Kim, Jae 11., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Ferrimagnetic FeⅢ-MnⅢ Zigzag Chain Formed by a New mer-Positioned IronⅢ Cyanide Precursor. Inorg. Chem.2007,46,8481.
    (b)Kim, Jae 11., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Field-Induced Metamagnetic Transition in the FeⅢ-MnⅢ Bimetallic Chain Built by a New Cyanide-Bearing Fe(III) Precursor. Inorg. Chem.2007,46,10461.
    (c) Yoon, J. H., Yoo, H. S., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. Cyanide-Bridged One-Dimensional Ferromagnetic RuⅢMnⅢ Coordination Polymer Exhibiting a Field-Induced Magnetic Phase Transition. Inorg. Chem.2009,48,816.
    (d) Kim, Jae 11., Kwak H. Y., Yoon J. H., Ryu D. W., Yoo I. Y., Yang N., Cho, B. K., Park, J. G., Lee, H., Hong, C. S. FeⅢ-MnⅢ Bimetallic Complexes with Dimeric and Chain Structures Constructed from a Newly Made mer-Fe Tricyanide:Structures and Magnetic Properties. Inorg. Chem.2009,48,2956.
    [25]Forum Issue on Molecular Magnetism, Inorg. Chem.2009,48,3293.
    [26]Miyasaka, H., Saitoh, A., Abe, S. Magnetic assemblies based on MnⅢ salen analogues. Coord. Chem. Rev.2007,251,2622. and references therein.
    [27]Clemente-Leon, M., Coronado E., Galan-Mascaros, J. R., Gomez-Garcia, C. J., Woike, T., Clemente-Juan, J. M. Bimetallic cyanide-bridged complexes based on the photochromic nitroprusside snion and paramagnetic metal complexes. Syntheses, structures, and physical characterization of the coordination compounds [Ni(en)2]4[Fe(CN)5NO]2[Fe(CN)6]·5H2O, [Ni(en)2][Fe(CN)5NO]·3H2O, [Mn(3-MeOsalen)(H2O)]2[Fe(CN)5NO], and [Mn(5-Brsalen)]2[Fe(CN)5NO]. Inorg. Chem.2001,40,87.
    [28]Silviu, N., Floriana, T., Catalin, M., Christopher, A. M., Narcis, A., Winpenny Richard, E. P., Marius, A. Supramolecular Dimers and Chains Resulting from Second Coordination Sphere Interactions. Cryst. Growth Des.2007,7,1825.
    [29]Yuan, M., Zhao, F., Zhang, W., Pan, F., Wang, Z. M., Gao, S. Chem. Eur. J.2007,13, 2937.
    [30](a) Koner, R., Lin, H. H., Wei, H.H., Mohanta, S. Syntheses, Structures, and Magnetic Properties of Diphenoxo-Bridged MnⅡLnⅢ Complexes Derived from N,N'-Ethylenebis(3-ethoxysalicylaldiimine) (M= Cu or Ni, Ln= Ce, Yb):Observation of Surprisingly Strong Exchange Interactions. Inorg. Chem.2005,44,3524.
    (b) Madalan, A. M., Avarvari, N., Fourmigue, M., Clerac, R., Chibotaru. L. F., Clima, S., Andruh, M. Heterospin Systems Constructed from [Cu2Ln]3+ and [Ni(mnt)2]1-,2-Tectons: First 3p3d4f Complexes (mnt= Maleonitriledithiolato). Inorg. Chem.2008,47,940.
    [31]Gheorghe, R., Cucos, P., Andruh, M., Costes, J. P., Donnadieu, B., Shova, S. Oligonuclear 3d-4f Complexes as Tectons in Designing Supramolecular Solid-State Architectures:Impact of the Nature of Linkers on the Structural Diversity. Chem. Eur. J. 2006,12,187.
    [32]Nayak, M., Koner, R., Lin, H. H., Florke, U., Wei, H. H., Mohanta, S. Syntheses, Structures, and Magnetic Properties of Mononuclear Cull and Tetranuclear CuⅡ3MⅡ(M = Cu, Co, or Mn) Compounds Derived from N,N'-Ethylenebis(3-ethoxysalicylaldimine):Cocrystallization Due to Potential Encapsulation of Water. Inorg. Chem.2006,45,10764.
    [33](a) Johnson, C. R., Jones, C. M., Asher, S. A., Abola, J. E. Inorg. Chem.1991,30,2120.
    (b)Mascharak, P. K. Convenient Synthesis of Tris(tetraethylammonium) Hexacyanoferrate(Ⅲ) and Its Use as an Oxidant with Tunable Redox Potential. Inorg. Chem.1986,25,245.
    [34]Ni, Z. H., Zheng, L., Zhang, L. F., Cui, A. L., Ni, W. W., Zhao, C. C., Kou, H. Z. Cyanido-Bridged Dimetallic Complexes Derived from Manganese(III) Schiff Bases and Pentacyanidonitrosylchromate(I):Synthesis, Crystal Structure and Magnetic Properties. Eur. J. Inorg. Chem.2007,1245.
    [35](a) Culp, J. T., Park, J. H., Meisel, M. W., Talham, D. R. Monolayer, Bilayer, Multilayers:Evolving Magnetic Behavior in LangmuirBlodgett Films Containing a Two-Dimensional IronNickel Cyanide Square Grid Network. Inorg. Chem.2003,42, 2842.
    (b)Ni, W. W., Ni, Z. H., Cui, A. L., Liang, X., Kou, H. Z. Cyanide-Bridged MnⅢ-FeⅢ Bimetallic Complexes Based on the Pentacyano(1-methylimidazole)Ferrate (III) Building Block:Structure and Magnetic Characterizations. Inorg. Chem.2007,46, 22.
    (c)Zhao, C. C., Ni, W. W., Tao, J., Cui, A. L., Kou, H. Z., Ligand-directed assembly of cyanide-bridged bimetallic MnⅡFeⅢ coordination polymers based on the pentacyanoferrite(III) building blocks:synthesis, crystal structure and magnetic properties. CrystEngComm.2009,11,632.
    [36](a) Shen, X. P., Li, B. L., Zou, J. Zou, J. Z., Xu, Z. Crystal structure of a cyanide-bridged heptanuclear manganese(Ⅲ)-chromium(Ⅲ) complex with a ground state S= 21/2. Transition Met. Chem.2002,27,372.
    (b)Shen, X. P., Li, B. L., Zou, J. Zou, J. Z., Hu, H. M., Xu, Z. The first cyano-bridged heptanuclear Mn(III)6Fe(III) cluster:crystal structure and magnetic properties of [{Mn(salen)·H2O}6Fe(CN)6][Fe (CN)6]·6H2O. J. Mol. Struc.2003,657,325.
    [37](a) Glaser, T., Heidemeier, M., Weyhermuller, T., Hoffmann, R. D., Rupp, H., Muller, P. Property-Oriented Rational Design of Single-Molecule Magnets:A C3-Symmetric Mn6Cr Complex based on Three Molecular Building Blocks with a Spin Ground State of St=21/2. Angew. Chem., Int. Ed.2006,45,6033.
    (b)Glaser, T., Heidemeier, M., Krlckemeyer, E., Bogge, H., Stammler, A., Frohllch, R., B(?), E., Schnack, J. Exchange Interactions and Zero-Field Splittings in C3-Symmetric MnIII6FeIII:Using Molecular Recognition for the Construction of a Series of High Spin Complexes Based on the Triplesalen Ligand. Inorg. Chem.2009,48,607.
    [38](a) Plass, W., Pahlmann, A., Rautengarten, J. Angew. Chem. Int. Ed.2001,40,4207.
    (b) Desplanches, C., Ruiz, E., Rodrgiuez-Fortea, A., Alvarez, S. Exchange Coupling of Transition-Metal Ions through Hydrogen Bonding:A Theoretical Investigation. J. Am. Chem. Soc.2002,124,5197.
    (c)Tang, J. K., Coster, J. S., Golobi, A., Kozlevar, B., Robertazzi, A., Vargiu, A. V., Gamez, P., Reedijk, J. Magnetic Coupling between Copper(II) Ions Mediated by Hydrogen-Bonded (Neutral) Water Molecules. Inorg. Chem.2009,48,5473.
    [39]Feng, Y. H., Wang, C., Xu, G. F., Ouyang, Y., Liao, D. Z., Yan, S. P. Inorg. Chem. Commun.2008,11,341.
    [40]Choi, H. J., Sokol, J. R., Long, J. R. J. Phys. Chem.2004,65,839.
    [41]Pan, F., Wang, Z. M., Gao, S. Magneto-Structural Correlation in a Series of Bimetallic Alternating Chain Complexes of [CrⅢL(CN)4]n[MnⅢ(salpn)]n·nSolvents (L= 2,2'-bipy or 9,10-phen, salpn= Substituted Salicyldehyde, Solvents= Water and Methanol). Inorg. Chem.2007,46,10221.
    [42]Visinescu, D., Toma, L. M., Lloret, F., Fabelo, O., Ruiz-Peez, C., Julve, M., MⅢ(bpym)(CN)4]-:a suitable building block to design ferrimagnetic cyano-bridged heterobimetallic chains (M= Fe, Cr, bpym= 2,2'-bypyrimidine). Dalton. Trans.2008, 4103.
    [43]Visinescu, D., Toma, L. M., Lloret, F., Fabelo, O., Ruiz-Peez, C., Julve, M., Unprecedented coexistence of cyano-bridged Mn4ⅢCrⅢ and Mn2ⅢCrⅢ heterobimetallic complexes in one single crystal. Dalton. Trans.2009,37.
    [44]Van Langenberg, K., Batten, S. R., Berry, K. J., Hockless, D. C. R., Moubaraki, B., Murray, K. S. Structure and Magnetism of a Bimetallic Pentanuclear Cluster [(Ni(bpm)2)3(Fe(CN)6)2]·7H2O (bpm) Bis(1-pyrazolyl)methane)). The Role of the Hydrogen-Bonded 7H2O "Cluster"'in Long-Range Magnetic Ordering. Inorg. Chem. 1997,36,5006.
    [45]Manson, J. L., Schlueter, J. A., Funk, K. A., Southerland, H. I., Twamley, B., Lancaster, T., Blundell, S. J., Baker, P. J., Pratt, F. L., Singleton, J., McDonald, R. D., Goddard, P. A., Senggupta, P., Batista, C. D., Ding, L., Lee, C. H., Whangbo, M. H., Franke, I., Cox, S., Baines, C., Trial, D. Strong H···F Hydrogen Bonds as Synthons in Polymeric Quantum Magnets:Structural, Magnetic, and Theoretical Characterization of [Cu(HF2)(pyrazine)2]SbF6, [Cu2F(HF)(HF2)(pyrazine)4](SbF6)2, and [CuAg(H3F4)(pyrazine)5](SbF6)2. J. Am. Chem. Soc.2009,131,6733.
    [46]Miyasaka, H., Okava, H., Matsumoto, N. Ferrimagnetic Property of Two-Dimensional Layered Compound K[Mn(3-MeOsalen)]2[Cr(CN)6]·H2O. Mol. Cryst. and Liq. Cryst. 1999,335,303.
    [1](a) Ferlay, S., Mallah, T., Quahes, R., Veillet, P., Verdaguer, M. A room-temperature organometallic magnet based on Prussian blue. Nature 1995,378,701.
    (b)Sato, O., Iyoda, T., Fujishima, A., Hashimoto, K. Electrochemically Tunable Magnetic Phase Transition in a High-Tc Chromium Cyanide Thin Film. Science 1996,271,49.
    (c)Entley, W. R., Girolami, G. S. High-Temperature Molecular Magnets Based on Cyanovanadate Building Blocks:Spontaneous Magnetization at 230 K. Science 1995,268,397.
    (d) Holmes, S. M., Girolami, G. S. Synthesis of KVⅡ[CrⅢ(CN)6]-2H2O:A crystalline molecule-based magnet with a magnetic ordering temperature above 100℃. J. Am. Chem. Soc.1999,121,5593.
    (e)Hatlevik,(?)., Buschman, W. E., Zhang, J., Manson, J. L., Miller, J. S. Enhancement of the magnetic ordering temperature and air stability of a mixed valent vanadium hexacyanochromate(III) magnet to 99℃ (372 K). Adv. Mater. 1999,11,914.
    (f)Kurmoo, M., Kumagai, H., M. Hughes, S., J. Kepert, C. Reversible Guest Exchange and Ferrimagnetism (Tc= 60.5 K) in a Porous Cobalt(II)-Hydroxide Layer Structure Pillared with trans-1,4-Cyclohexanedicarboxylate. Inorg. Chem.2003, 42,6709.
    (g)Lu, Z, Wang X., Liu Z, Liao B, Gao S, Xiong R, Ma H, Zhang D, Zhu D. Tuning the Magnetic Behavior via Dehydration/Hydration Treatment of a New Ferrimagnet with the Composition of K0.2Mn1.4Cr(CN)6·6H20. Inorg. Chem.2006,45, 999.
    [2](a) Niel, V., Thompson, A. L., Munoz, M. C., Galet, A., Goeta, A. E., Real, J. A. Crystalline-State Reaction with Allosteric Effect in Spin-Crossover, Interpenetrated Networks with Magnetic and Optical Bistability. Angew. Chem., Int. Ed.2003,42,3760.
    (b)Molnar, G., Niel, V., Gaspar, A. B., Real, J. A., Zwick, A., Bousseksou, A., McGarvey, J. J. Vibrational Spectroscopy of Cyanide-Bridged, Iron(II) Spin-Crossover Coordination Polymers:Estimation of Vibrational Contributions to the Entropy Change Associated with the Spin Transition. J. Phys. Chem. B 2002,106,9701.
    (c)Molnar, G., Niel, V., Real, J. A., Dubrovinsky, L., Bousseksou, A., McGarvey, J. J. First Observation of a Piezo-Hysteresis Loop at Room Temperature. J. Phys. Chem. B 2003,107,3149.
    (d) Galet, A., Munoz, M. C., Real, J. A. Fe(3CNpy)2[Cu(3CNpy)(i-CN)2]2:a One-Dimensional Cyanide-Based Spin-Crossover Coordination Polymer. Inorg. Chem. 2006,45,4583.
    (e)Agusti, G., Munoz, M. C., Real, J. A. Spin-Crossover Behavior in Cyanide-bridged Iron(Ⅱ)-Gold(I) Bimetallic 2D Hofmann-like Metal-Organic Framework. Inorg. Chem.2008,47,2552.
    (f)Agusti, G., Munoz, M. C., Gaspar, A. B., Real. J. Spin-Crossover Behavior in Cyanide-Bridged Iron(II)-Copper(I) Bimetallic 1-3D Metal-Organic Frameworks. A. Inorg. Chem.2009,48,3371.
    [3](a) Sato, O. Photoinduced Spin-Crossover, Photochromism, and Photoinduced Magnetization. Ace. Chem. Res.2003,36,692.
    (b)Herrera, J. M., Marvaud, V., Verdaguer, M., Marrot, J., Kalisz, M., Mathoniere, C. Reversible Photoinduced Magnetic Properties in the Heptanuclear Complex [Molv(CN)2(CNCuL)6]8+:A Photomagnetic High-Spin Molecule. Angew. Chem., Int. Ed.2004,43,5467.
    (c)Long, J., Chamoreau, L. M., Mathoniere, C., Marvaud, V. Photoswitchable Heterotrimetallic Chain Based on Octacyanomolybdate, Copper, and Nickel:Synthesis, Characterization, and Photomagnetic Properties. Inorg. Chem.2009,48,22.
    (d)Bleuzen, A., Marvaud, V., Mathoniere, C., Sieklucka, B., Verdaguer, M. Photomagnetism in Clusters and Extended Molecule-Based Magnets. Inorg. Chem.2009,48,3453. and references therein.
    [4](a) Sokol, J. J., Hee, A. G., Long, J. R. Sokol J. J, Hee A. G, Long J. F. A cyano-bridged single-molecule magnet, slow magnetic relaxation in a trigonal prismatic MnMo6(CN)]18 cluster. J. Am. Chem. Soc.2002,124,7656.
    (b)Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior:synthesis, structure, and magnetic properties of {[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}. Angew. Chem., Int. Ed.2003,42,1523.
    (c)Mironov, V. S., Chibotaru, L. F., Ceulemans, A. Mechanism of a Strongly Anisotropic MoⅢ-CN-MnⅡ Spin-Spin Coupling in Molecular Magnets Based on the [Mo(CN)7]4- Heptacyanometalate:A New Strategy for Single-Molecule Magnets with High Blocking Temperatures. J. Am. Chem. Soc.2003,125,9750.
    (d)Choi, H. J., Sokol, J. J., Long, J. R. Raising the spin-reversal barrier in cyano-bridged single-molecule magnets:linear MnⅢ2MⅢ(CN)6 (M= Cr, Fe) species incorporating [(5-Brsalen)Mn]+ units. Inorg. Chem.2004,43,1606.
    (e)Schelter, E. J., Prosvirin, A. V., Dunbar, K. R. Molecular cube of ReⅡ and Mn" that exhibits single-molecule magnetism. J. Am. Chem. Soc.2004,126,15004.
    (f)Ni, Z. H., Kou, H. Z., Zhang, L. F., Ge, C., Cui, A. L., Wang, R. J., Li, Y., Sato O. [MnⅢ(salen)]6[FeⅢ(bpmb)(CN)2]6·7H2O:a unique cyanide-bridged nanosized molecular wheel. Angew. Chem., Int. Ed.2005,44,7742.
    (g)Miyasaka, H., Takahashi, H., Madanbashi, H., Sugiura, K., Clerac, R., Nojiri, H. Cyano-bridged MnⅢ3MⅢ (MⅢ= Fe, Cr) complexes:synthesis, structure, and magnetic properties. Inorg. Chem.2005,44,5969.
    (h)Li, D. F., Clerac, R., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. An S= 2 Cyanide-Bridged Trinuclear FeⅢ2NiⅡ Single-Molecule Magnet. Inorg. Chem.2006,45,5251.
    (I)Li, D., Parkin, S., Wang, G., Yee, G. T., Clerac, R., Wernsdorfer, W., Holmes, S. M. An S= 6 Cyanide-Bridged Octanuclear FeⅢ4NiⅡ4 Complex that Exhibits Slow Relaxation of the Magnetization. J. Am. Chem. Soc.,2006, 128,4214.
    (j)Wang, C. F., Zuo, J. L., Bartlett, B. M., Song, Y., Long, J. R., You, X. Z. Symmetry-Based Magnetic Anisotropy in the Trigonal Bipyramidal Cluster
    [Tp2(Me3tacn)3Cu3Fe2(CN)6]4+. J. Am. Chem. Soc.2006,128,7162.
    (k)Yoon, J. H., Lim, J. H., Kim, H. C., Hong, C. S. Cyanide-Bridged Single-Molecule Magnet Constructed by an Octacoordinated [W(CN)6(bpy)]- Anion. Inorg. Chem.2006,45,9613.
    (1)Atanasov, M., Comba, P., Lampeka, Y. D., Linti, G., Malcherek, T., Miletich, R., Prikhod'ko, A. I., Pritzkow, H. Encapsulation of Cyanometalates by a Tris-macrocyclic Ligand Tricopper(II) Complex:Syntheses, Structural Variation, and Magnetic Exchange Coupling Pathways. Chem. Eur. J.2006,12,737.
    (m)Atanasov, M., Comba, P., Daul, C. A. Combined Ligand Field and Density Functional Theory Analysis of the Magnetic Anisotropy in Oligonuclear Complexes Based on FeⅢ-CN-MⅡ Exchange-Coupled Pairs. Inorg. Chem.2008,47,2449.
    (n)Atanasov, M., Busche, C., Comba, P., Hallak, F. E., Martin, B., Rajaraman, G., Slageren, J. van, Wadepohl, H., Trinuclear (M1)CN(M2)2 Complexes (M1= CrⅢ, FeⅢ, CoⅢ, M2= CuⅡ, NiⅡ, MnⅡ). Are Single Molecule Magnets Predictable? Inorg. Chem.2008,47,8112.
    [5](a) Lescouezec, R., Vaissermann, J., Ruiz-Perez, C., Lloret, F., Carrasco, R., Julve, M., Verdaguer, M., Dromzee, Y., Gatteschi, D., Wernsdorfer, W. Cyanide-bridged ironⅢ-cobalt(II) double zigzag ferromagnetic chains:two new molecular magnetic nanowires. Angew. Chem., Int. Ed.2003,42,1483.
    (b)Toma, L. M., Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Cyanide-bridged Fe(III)-Co(II) bis-double zigzag chains with a slow relaxation of the magnetization. Chem. Commun. 2003,1850.
    (c)Li, D. F., Parkin, S., Wang, G, Yee, G. T., Prosvirin, A. V., Holmes, S. M. Single-molecule magnets constructed from cyanometalates: {[Tp*FeⅢ(CN)3MⅡ(DMF)4]2[OTf]2}·2DMF (MⅡ= Co, Ni). Inorg. Chem.2005,44,4903
    (d)Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. [Fe(bpym)(CN)4]-:A New Building Block for Designing Single-Chain Magnets. J. Am. Chem. Soc.2006,128,4842.
    (e) Miyasaka, H., Julve, M., Yamashita, M., Clerac, R. Slow Dynamics of the Magnetization in One-Dimensional Coordination Polymers:Single-Chain Magnets. Inorg. Chem.2009, 48,3420.
    [6](a) Rebilly, J. N., Mallah, T. Synthesis of Single-molecule Magnets Using Metallocyanates. Struct. bond.2006,122,103.
    (b)Lescouezec, R., Toma, L. M., Vaissermann, J., Verdaguer, M., Delgado, F. S., Ruiz-Perez, C., Lloret, F., Julve, M. Design of single chain magnets through cyanide-bearing six-coordinate complexes. Coord. Chem. Rev.2005,249,2691.
    (c)Miyasaka, H., Saitoh, A., Abe, S. Magnetic assemblies based on MnⅢ salen analogues. Coord. Chem. Rev.2007,251,2622.
    [7](a) Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M., Llusar, R., Uriel, S. [Fe(Phen)(CN)4]-:a versatile building block for the design of heterometallic systems. crystal structures and magnetic properties of PPh4[Fe(Phen)(CN)4]·2H2O and [{Fe(Phen)(CN)4}2M(H2O)2]-4H2O [Phen= 1,10-phenanthroline, M= Mn(II) and Zn(II)]. Inorg. Chem.2001,40,2065.
    (b)Toma, L. M., Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Cyanide-bridged Fe(III)-Co(II) bis-double zigzag chains with a slow relaxation of the magnetization. Chem. Commun.2003,1850.
    [8]Tregenna-Piggott, P. L. W., Sheptyakov, D., Keller, L., Klokishner, S. L., Ostrovsky, S. M., Palii, A. V., Reu, O. S., Bendix, J., Brock-Nannestad, T., Pedersen, K., Weihe, H., Mutka, H. Single-Ion Anisotropy and Exchange Interactions in the Cyano-Bridged Trimers MnⅢ2MⅢ(CN)6 (MⅢ= Co, Cr, Fe) Species Incorporating [Mn(5-Brsalen)]+ Units:An Inelastic Neutron Scattering and Magnetic Susceptibility Study. Inorg. Chem. 2009,48,128.
    [9]Beltran, L. M. C., Long, J. R. Directed assembly of metal-cyanide cluster magnets. Acc. Chem. Res.,2005,38,325.
    [10](a) Berlinguette, C. P., Dragulescu-Andrasi, A., Sieber, A., Galan-Mascaros, J. R., Gudel, H. U., Achim C., Dunbar, K. R. A Charge-Transfer-Induced Spin Transition in the Discrete Cyanide-Bridged Complex{[Co(tmphen)2]3[Fe(CN)6]2}.J.Am. Chem. Soc. 2004,126,6222.
    (b)Smith, J. A., Galan-Mascaros, J. R., Clerac, R., Dunbar, K. R. {Mn(OH2)2[Mn(bpym)(H2O)]2[Fe(CN)6]2}∞:a two-dimensional terrimagnet with a partial cubane motif. Chem. Commun.2000,1077.
    [11](a) Thetiot, F., Triki, S. J., Pala, S. C., Gomez-Garcia, J., Golhen, S. [Cu(tn)]3[Cr(CN)6]2·3H2O:a unique two-dimensional Cu-Cr cyano-bridged ferromagnet (tn= 1,3-diaminopropane). Chem. Commun.2002,1078.
    [12](a) Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. The Two-Dimensional Network Structure and Metamagnetic Properties of the 2:1 Complex of [Mn(3-MeOsalen)(H2O)]ClO4 and K3[Fe(CN)6]. Angew. Chem., Int. Ed. Engl.1995, 34,1446.
    (b)Miyasaka, H., Matsumoto, N., Okawa, H., Re, N., Gallo, E., Floriani, C. Complexes derived from the reaction of manganese(Ⅲ) Schiff base complexes and hexacyanoferrate(III):syntheses, multidimensional network structures, and magnetic properties. J. Am. Chem. Soc.1996,118,981.
    (c)Miyasaka, H., Ieda, H., Matsumoto, N., Re, N., Crescenzi, R., Floriani, C. Assembling bi-, tri-and pentanuclear complexes into extended structures using a desolvation reaction:synthesis, structure, and magnetic properties of manganese(III)-Schiff-base-hexacyanoferrate polymeric compounds and their derived extended structures. Inorg. Chem.1998,37,255.
    (d)Matsumoto, N., Sunatsuki, Y., Miyasaka, H., Hashimoto, Y., Luneau, D., Tuchagues, J. P. [{Mn(salen)CN}n]:The first one-dimensional chain with alternating high-spin and low-spin MnⅢ centers exhibits metamagnetism. Angew. Chem., Int. Ed.1999,38,171.
    [13](a) Gao, S., Sun, H. L., Su, G., Wang, Z. M., Zhang, S. W. Linking cyano-bridged ladders by azide to form a layered metamagnet. Chem. Commun.2004,1906.
    (b)Kou, H. Z., Zhou, B. C., Gao S., Wang, R. J. A 2D Cyano-and oxamidato-bridged heterotrimetallic CrⅢ-CuⅡ-GdⅢ complex. Angew. Chem. Int. Ed.2003,42,3288.
    [14](a) Wang, S., Zuo, J. L., Zhou, H. C., Choi, H. J., Ke, Y, Long J. R., You, X. Z. [(Tp)8(H2O)6CuⅡ6FeⅢ8(CN)24]4+:A cyanide-bridged face-centered-cubic cluster with single-molecule-magnet behavior. Angew. Chem., Int. Ed.2004,43,5940.
    (b)Wang, S., Zuo, J. L., Gao, S., Song, Y, Zhou, H. C., Zhang Y. Z., You, X. Z. The observation of superparamagnetic behavior in molecular nanowires. J. Am. Chem. Soc.2004,126, 8900.
    [15](a) Kim, Jae 11., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Ferrimagnetic FeⅢ-MnⅢ Zigzag Chain Formed by a New mer-Positioned Iron(Ⅲ) Cyanide Precursor. Inorg. Chem.,2007,46,8481. Inorg. Chem.2007,46,8481.
    (b)Kim, Jae 11., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Field-Induced Metamagnetic Transition in the FeⅢ-MnⅢ Bimetallic Chain Built by a New Cyanide-Bearing FeⅢ Precursor. Inorg. Chem.2007,46,10461.
    (c)Yoon, J. H., Yoo, H. S., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. Cyanide-Bridged One-Dimensional Ferromagnetic RuⅢMnⅢ Coordination Polymer Exhibiting a Field-Induced Magnetic Phase Transition. Inorg. Chem.2009,48, 816.
    (d)Kim, Jae II., Kwak H. Y., Yoon J. H., Ryu D. W., Yoo I. Y., Yang N., Cho, B. K., Park, J. G., Lee, H., Hong, C. S. Cyanide-Bridged FeⅢ-MnⅢ Bimetallic Complexes with Dimeric and Chain Structures Constructed from a Newly Made mer-Fe Tricyanide: Structures and Magnetic Properties. Inorg. Chem.2009,48,2956.
    [16](a) Jiang, L., Lu T. B., Feng, X. L. Two Supramolecular Isomers of Molecular Squares and 1D Helical Chains with Alternating Right-and Left-Handed Chirality. Inorg. Chem. 2005,44,7056. (b) Jiang, L., Feng, X. L., Lu T. B., Gao, S. Synthesis, Structures, and Magnetic Properties of a Series of Cyano-Bridged FeMn Bimetallic Complexes. Inorg. Chem.2006,45,5018.
    (c)Jiang, L., Choi, H. J., Feng, X. L., Lu T. B., Long, J. R. Syntheses, Structures, and Magnetic Properties of the Face-Centered Cubic Clusters [Tp8(H2O)12M6Fe8(CN)24]4+(M= Co, Ni). Inorg. Chem.2007,46,2181.
    [17](a) Yeung, W. F., Lau, P. H., Wei, H. Y., Sun, H. L., Gao, S., Chen, Z. D., Wong, W. T. Heterometallic MⅡRuⅢ2 compounds constructed from trans-[Ru(salen)(CN)2]- and trans-[Ru(acac)2(CN)2]-. Synthesis, structures, magnetic properties, and density functional theoretical study. Inorg. Chem.2005,44,6579.
    (b)Yeung, W. F., Lau, P. H., Wang, X. Y, Gao, S., Szeto, L., Wong, W. T.2D LnⅢRuⅢ2 Compounds Constructed from trans-[Ru(acac)2(CN)2]-:Syntheses, Structures, and Magnetic Properties. Inorg. Chem.2006,45,6756.
    [18](a) Ni, Z. H., Kou, H. Z., Zhang, L. F., Ni, W. W., Jiang, Y. B., Cui, A. L., Ribas, J., Sato, O. mer-[Fe(pcq)(CN)3]-:A novel cyanide-containing building block and its application to assembling cyanide-bridged trinuclear FeⅢ2MnⅡ complexes (pcq-= 8-(pyridine-2-carboxamido)quinoline anion). Inorg. Chem.2005,44,9631.
    (b)Ni, Z. H., Kou, H. Z., Zheng, L., Zhao, Y. H., Zhang, L. F., Wang, R. J., Cui, A. L., Sato, O. Assembly of azido-or cyano-bridged binuclear complexes containing the bulky [Mn(phen)2]2+ building block:syntheses, crystal structures, and magnetic properties. Inorg. Chem.2005,44,4728.
    (c)Ni, Z. H., Kou, H. Z., Zhao, Y. H., Zheng, L., Wang, R. J., Cui, A. L., Sato, O. [Fe(bpb)(CN)2]-as a versatile building block for the design of novel low-dimensional heterobimetallic systems:synthesis, crystal structures, and magnetic properties of cyano-bridged FeⅢ-NiⅡ complexes [(bpb)2-= 1,2-Bis(pyridine-2-carboxamido)benzenate]. Inorg. Chem.2005,44,2050. (d) Ni, Z. H., Zhang, L. F., Tangoulis, V., Wernsdorfer, W., Cui, A. L., Sato, O., Kou, H. Z. Substituent Effect on Formation of Heterometallic Molecular Wheels:Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2007,46,6029.
    [19]Li, D. F., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. Synthesis and Spectroscopic and Magnetic Characterization of Tris(3,5-dimethylpyrazol-l-yl)borate Iron Tricyanide Building Blocks, a Cluster, and a One-Dimensional Chain of Squares. Inorg. Chem. 2006,45,1951.
    [20]Lescouezec, R., Vaissermann, J., Marilena, T., Carrasco, R., Lloret, F., Julve, M.
    mer-[FeⅢ(bpca)(CN)3]-:A new low-spin iron(III) complex to build heterometallic ladder-like chains. Inorg. Chem.2004,43,2234.
    [21]Wen, H. R., Wang, C. F., Song, Y, Gao, S., Zuo, J. L., You, X. Z. Synthesis, Crystal Structures, and Magnetic Properties of Cyano-Bridged Heterobimetallic Chains Based on [(Tp)Fe(CN)3]-.Inorg. Chem.2006,45,8942.
    [22]Ray, M., Mukherjee, R., Richardson, J. F., Buchanan, R. M. Spin-state regulation of iron(III) centres by axial ligands with tetradentate bis(picolinamide) in-plane ligands. J. Chem. Soc., Dalton Trans.1993,2451.
    [23]Federica, B., Maria-Cristina, S., Julrgen, E., Andreas, S., Antonia, N., Helen, S. E., Silvio, D. Cyano-Bridged Structures Based on [Mn"(N3O2-Macrocycle)]2+:A Synthetic, Structural, and Magnetic Study. Inorg. Chem.2005,44,969.
    [24]Omar, J. S., Daniel, R. R., Maria, R., del Jesus, H., Martha, S., Elena, T., Rafael, Z. U. Magnetostructural behaviour of the complex [MnL(H2O)2]Cl2-4H2O at variable temperature studied by electron spin resonance (L:5,2,13-dimethyl-3,6,9,12,18-pen taazabicyclo[12.3.1]octadeca-1(18),2,12,14,16-pentaene). J. Chem. Soc., Dalton Trans. 1998,1551.
    [25](a) Amandeep, K. S., Marius, A., Olivier, K., Stephane, G., Lahcene, O., Yakhmi, J. V. A Mixed-Valence and Mixed-Spin Molecular Magnetic Material: [MnⅡL]6[MoⅢ(CN)7][MoⅣ(CN)8]2·19.5H2O. Angew. Chem. Int. Ed.1999,38,2606.
    (b) Guillaume, R., Stephane, G., Lahcene, O., Corine, M., Olivier, K. Structural and photomagnetic studies of a 1-D bimetallic chain [MnⅡ2(L)2(H20)][Molv(CN)8]·5H20 (L: macrocycle):analogy with the photo-oxidation of K4[Molv(CN)8]·2H2O. J. Chem. Soc., Dalton Trans.2000,3609.
    [26](a) Carmen, P., Marius, A., Yves, J., Zdirad, Z., Nathalie, K., Louis, R. Trinuclear magnetic clusters based on cyanide metal complexes:synthesis, crystal structures, and magnetic properties of four new [MnⅡ2MⅢ] complexes (M= Cr, Fe, Co). J. Mater. Chem. 2006,16,2660. (b) Rabindranath, P., Cedric, D., Philippe, G., Jean-Pascal, S. Octadecanuclear Cluster or 1D Polymer with [ML2Nb(CN)g]n Motifs as a Function of ML(M= Ni(II), n= 6, M= Mn(II), n= oo, L= Macrocycle). Inorg. Chem.2003,42, 6607.
    [27]Tanase, S., Andruh, M., Stanica, N., Mathoniere, C, Rombaut, G, Golhen, S., Ouahab, L. A novel cyano-bridged pentanuclear complex:[{Mn3(MAC)3(H2O)2}{Fe(CN)6}2] ·6H2O·2CH3OH:synthesis, crystal structure and magnetic properties (MAC= pentaazamacrocyclic ligand). Polyhedron 2003,22,1315.
    [28]Kang, S. G., Ryu, K., Jung, S. K., Kim, J. Template synthesis, crystal structure, and solution behavior of a hexaaza macrocyclic nickel(II) complex containing two N-aminoethyl pendant arms. Inorg. Chim. Acta 1999,293,140.
    [29](a) Chiari, B., Cinti, A., Piovesana, O., Zanazzi, P. F. Exchange Interactions in the Bimetallic Chain Compound Cu(ethylenediamine)2MnCl4. Inorg. Chem.1995,34,2652.
    (b)Burla, M. C., Chiari, B., Cinti, A., Piovesana, O. Structure and Magnetism of a New 2-D Bimetallic Compound of Mn(II) and Cu(II). Mol. Cryst. Liq. Cryst.1995,273,211.
    (c)Aneschi, A., Gatteschi, D., Melandri, M. C., Rey, P., Sessoli, R. Structure and Magnetic Properties of Manganese(II) Carboxylate Chains with Nitronyl Nitroxides and Their Reduced Amidino-Oxide Derivatives:From Random-Exchange One-Dimensional to Two-Dimensional Magnetic Materials. Inorg. Chem.1990,29,4228.
    (d)Wrzeszcz, G., Dobrzan'ska, L., Wojtczak, A., Grodzicki, A. Magnetostructural characterisation of the first bimetallic assemblies derived from the anionic building block [Cr(NCS)6]3·[M(en)3]n-[{M(en)2-μ-SCN-Cr(NCS)4-μ-NCS}2n] with M= Ni(Ⅱ), Zn(II). J. Chem. Soc., Dalton Trans.2002,2862.
    [30](a) Borras-Almenar, J. J., Clemente-Juan, J. M., Coronado, E., Tsukerblat, B. S. J. High-Nuclearity Magnetic Clusters:Generalized Spin Hamiltonian and Its Use for the Calculation of the Energy Levels, Bulk Magnetic Properties, and Inelastic Neutron Scattering Spectra. Inorg. Chem.,1999,38,6081.
    (b)Borras-Almenar, J. J., Clemente-Juan, J. M., Coronado, E., Tsukerblat, B. S. MAGPACK1 A package to calculate the energy levels, bulk magnetic properties, and inelastic neutron scattering spectra of high nuclearity spin clusters. J. Comput. Chem.2001,22,985.
    [31](a) Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. [Fe(bipy)(CN)4]-as a Versatile Building Block for the Design of Heterometallic Systems: Synthesis, Crystal Structure, and Magnetic Properties of PPh4[FeⅢ(bipy)(CN)4]aH2O, [{FeⅢ(bipy)(CN)4}2MⅡ(H2O)4]·4H2O, and [{FeⅢ(bipy)(CN)4}2ZnⅡ]·2H2O [bipy= 2,2'-Bipyridine, M= Mn and Zn]. Inorg. Chem.2002,41,818.
    (b)Kim, J., Han, S., Cho, I.-K., Choi, K. Y., Heu, M., Yoon, S., Suh, B. J. Synthesis of a cyano-bridged Fe2Mn linear unit and a Fe2Mn2 square unit by using the [fac-Fe{HB(pz)3}(CN)3]-building block. Polyhedron 2001,23,1333.
    [32]Zhao, C. C., Ni, W. W., Tao, J., Cui, A. L., Kou, H. Z., Ligand-directed assembly of cyanide-bridged bimetallic Mn"FeⅢ coordination polymers based on the pentacyanoferrite(III) building blocks:synthesis, crystal structure and magnetic properties. CrystEngComm.2009,11,632.
    [1](a) Sato, O. Photoinduced Spin-Crossover, Photochromism, and Photoinduced Magnetization. Acc. Chem. Res.2003,36,692.
    (b)Lescouezec, R., Toma, L. M., Vaissermann, J., Verdaguer, M., Delgado, F. S., Ruiz-Perez, C., Lloret, F., Julve, M. Design of single chain magnets through cyanide-bearing six-coordinate complexes. Coord. Chem. Rev.2005,249,2691.
    (c)Beltran, L. M. C., Long, J. R. Directed assembly of metal-cyanide cluster magnets. Acc. Chem. Res.2005,38,325.
    [2](a) Rebilly, J. N., Mallah, T. Synthesis of Single-molecule Magnets Using Metallocyanates. Struct. bond.2006,122,103.
    (b)Toma, L. M., Toma, L. D., Delgado, F. S., Ruiz-Perez, C., Sletten, J., Cano, J., Clemente-Juan, J. M., Lloret, F., Julve, M. Trans-dicyanobis(acetylacetonato)ruthenateⅢ as a precursor to build novel cyanide-bridged RuⅢ-MⅡ bimetallic compounds [M= Co and Ni]. Coord. Chem. Rev. 2006,250,2176.
    (c)Miyasaka, H., Saitoh A., Abe, S. Magnetic assemblies based on MnⅢ salen analogues. Coord. Chem. Rev.2007,251,2622.
    [3](a) Ohkoshi, S.-i., Tokoro, H., Hozumi, T. Z. Y., Hashimoto, K., Mathonie're, C., Bord, I., Rombaut, G., Verlelst, M., Moulin, C. C. D., Villain, F. Photoinduced Magnetization in Copper Octacyanomolybdate. J. Am. Chem. Soc.2006,128,270.
    (b)Ohkoshi, S.-i., Ikeda, S., Hozumi, T., Kashiwagi, T., Hashimoto, K. Photoinduced Magnetization with a High Curie Temperature and a Large Coercive Field in a Cyano-Bridged Cobalt-Tungstate Bimetallic Assembly. J. Am. Chem. Soc.2006,128,5320.
    [4](a) Smith, J. A., Galan-Mascaros, J. R., Clerac R., Dunbar, K. R. {Mn(OH2)2[Mn(bpym)(H2O)]2[Fe(CN)6]2}∞:a two-dimensional terrimagnet with a partial cubane motif. Chem. Commun.2000,1077.
    (b)Kaneko, W., Kitagawa S., Ohba, M. Chiral Cyanide-Bridged MnⅡMnⅢ Ferrimagnets, [MnⅡ(HL)(H2O)][MnⅢ(CN)6]·2H2O (L = S-or R-1,2-diaminopropane):Syntheses, Structures, and Magnetic Behaviors. J. Am. Chem. Soc.2007,129,248.
    (c)Funck, K. E., Hilfiger, M. G., Berlinguette, C. P., Shatruk, M., Wernsdorfer W., Dunbar, K. R. Trigonal-Bipyramidal Metal Cyanide Complexes:A Versatile Platform for the Systematic Assessment of the Magnetic Properties of Prussian Blue Materials. Inorg. Chem.2009,48,3438.
    [5]Visinescu, D., Desplanches, C., Imaz, I., Bahers, V., Pradhan, R., Villamena, F. A., Guionneau, P., Sutter, J. P. Evidence for Increased Exchange Interactions with 5d Compared to 4d Metal Ions. Experimental and Theoretical Insights into the Ferromagnetic Interactions of a Series of Trinuclear [{M(CN)8}3-/NiⅡ] Compounds (M= Mov or Wv). J. Am.Chem. Soc.2006,128,10202.
    [6]Song, Y, Zhang, P., Ren, X. M., Shen, X. F., Li, Y. Z., You, X. Z. Octacyanometallate-based single-molecule magnets:CoⅡ9MV6 (M= W, Mo). J. Am. Chem. Soc.2005,127,3708.
    [7](a) Lim, J. H., Yoon, J. H., Kim, H. C., Hong, C. S. Surface Modification of a Six-Capped Body-Centered Cube NigW6 Cluster:Structure and Single-Molecule Magnetism. Angew. Chem., Int. Ed.,2006,45,7424.
    (b)Freedman, D. E., Bennett, M. V., Long, J. R. Symmetry-breaking substitutions of [Re(CN)8]3- into the centered, face-capped octahedral clusters (CH3OH)24M9M'6(CN)48 (M= Mn, Co, M'= Mo, W). Dalton Trans.2006,2829.
    (c)Yoon, J. H., Yoo, H. S., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. Cyanide-Bridged One-Dimensional Ferromagnetic RuⅢMnⅢ Coordination Polymer Exhibiting a Field-Induced Magnetic Phase Transition. Inorg. Chem.2009,48, 816.
    [8](a) Galet, A., Munoz, M. C., Real, J. A. Fe(3CNpy)2[Cu(3CNpy)(i-CN)2]2:a One-Dimensional Cyanide-Based Spin-Crossover Coordination Polymer. Inorg. Chem. 2006,45,4583.
    (b)Agusti, G., Munoz, M. C., Real, J. A. Spin-Crossover Behavior in Cyanide-bridged Iron(II)-Gold(I) Bimetallic 2D Hofmann-like Metal-Organic Framework. Inorg. Chem.2008,47,2552.
    (f)Agusti, G., Munoz, M. C., Gaspar, A. B., Real, J. Spin-Crossover Behavior in Cyanide-Bridged Iron(II)-Copper(I) Bimetallic 1-3D Metal-Organic Frameworks. A. Inorg. Chem.2009,48,3371.
    [9](a) Gao, S., Sun, H. L., Su, G., Wang, Z. M., Zhang, S. W. Linking cyano-bridged ladders by azide to form a layered metamagnet. Chem. Commun.2004,1906.
    (b)Kou, H. Z., Zhou, B. C., Gao S., Wang, R. J. A 2D Cyano-and oxamidato-bridged heterotrimetallic CrⅢ-CuⅡ-GⅢ complex. Angew. Chem. Int. Ed.2003,42,3288.
    (c)Yeung, W. F., Lau, P. H., Wang, X. Y, Gao, S., Szeto, L., Wong, W. T.2D LnⅢRuⅢ2 Compounds Constructed from trans-[Ru(acac)2(CN)2]-. Syntheses, Structures, and Magnetic Properties. Inorg. Chem.2006,45,6756.
    [10](a) Jiang, L., Feng, X. L., Lu, T. B., Gao, S. Synthesis, Structures, and Magnetic Properties of a Series of Cyano-Bridged FeMn Bimetallic Complexes. Inorg. Chem. 2006,45,5018.
    (b)Jiang, L., Choi, H. J., Feng, X. L., Lu, T. B., Long, J. R. Syntheses, Structures, and Magnetic Properties of the Face-Centered Cubic Clusters [Tp8(H2O)12M6Fe8(CN)24]4+(M= Co, Ni). Inorg. Chem.2007,46,2181.
    [11](a) Miyasaka, H., Yamashita, M. A look at molecular nanosized magnets from the aspect of inter-molecular interactions. Dalton Trans.,2007,399, and references therein.
    (b) Bleuzen, A., Marvaud, V., Mathoniere, C., Sieklucka, B., Verdaguer, M. Photomagnetism in Clusters and Extended Molecule-Based Magnets. Inorg. Chem.,2009,48,3453. and references therein.
    [12](a) Sokol, J. J., Hee, A. G., Long, J. R. Sokol J J, Hee A G, Long J F. A cyano-bridged single-molecule magnet:slow magnetic relaxation in a trigonal prismatic MnMo6(CN)18 cluster. J. Am. Chem. Soc.2002,124,7656.
    (b)Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. trigonal-bipyramidal cyanide cluster with single-molecule-magnet behavior:synthesis, structure, and magnetic properties of{[MnⅡ(tmphen)2]3[MnⅢ(CN)6]2}. Angew. Chem., Int. Ed.2003,42,1523.
    (c)Mironov, V. S., Chibotaru, L. F., Ceulemans, A. Mechanism of a Strongly Anisotropic MoⅢ-CN-MnⅡ Spin-Spin Coupling in Molecular Magnets Based on the [Mo(CN)7]4- Heptacyanometalate:A New Strategy for Single-Molecule Magnets with High Blocking Temperatures. J. Am. Chem. Soc.2003,125,9750.
    (d)Choi, H. J., Sokol, J. J., Long, J. R. Raising the spin-reversal barrier in cyano-bridged single-molecule magnets:linear MnⅢ2MⅢ(CN)6 (M= Cr, Fe) species incorporating [(5-Brsalen)Mn]+ units. Inorg. Chem.2004,43,1606.
    (e)Schelter, E. J., Prosvirin, A. V., Dunbar, K. R. Molecular cube of ReⅡ and MnⅡ that exhibits single-molecule magnetism. J. Am. Chem. Soc.2004,126,15004.
    (f)Ni, Z. H., Kou, H. Z., Zhang, L. F., Ge, C., Cui, A. L., Wang, R. J., Li, Y., Sato O. [MnⅢ(salen)]6[FeⅢ(bpmb)(CN)2]6·7H2O:a unique cyanide-bridged nanosized molecular wheel. Angew. Chem., Int. Ed.2005,44,7742.
    [13](a) Miyasaka, H., Takahashi, H., Madanbashi, H., Sugiura, K., Clerac, R., Nojiri, H. Cyano-bridged MnⅢ3MⅢ (MⅢ= Fe, Cr) complexes:synthesis, structure, and magnetic properties. Inorg. Chem.2005,44,5969.
    (h)Li, D. F., Clerac, R., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. An S= 2 Cyanide-Bridged Trinuclear FeⅢ2NiⅡ Single-Molecule Magnet. Inorg. Chem.2006,45,5251.
    (I)Li, D., Parkin, S., Wang, G., Yee, G. T., Clerac, R., Wernsdorfer, W., Holmes, S. M. An S= 6 Cyanide-Bridged Octanuclear FeⅢ4NiⅡ4 Complex that Exhibits Slow Relaxation of the Magnetization. J. Am. Chem. Soc.2006,128,4214.
    (j)Wang, C. F., Zuo, J. L., Bartlett, B. M., Song, Y., Long, J. R., You, X. Z. Symmetry-Based Magnetic Anisotropy in the Trigonal Bipyramidal Cluster [Tp2(Me3tacn)3Cu3Fe2(CN)6]4+. J. Am. Chem. Soc.2006,128,7162.
    (k)Yoon, J. H., Lim, J. H., Kim, H. C., Hong, C. S. Cyanide-Bridged Single-Molecule Magnet Constructed by an Octacoordinated [W(CN)6(bpy)]- Anion. Inorg. Chem.2006, 45,9613.
    (1)Atanasov, M., Comba, P., Lampeka, Y. D., Linti, G., Malcherek, T. Miletich, R., Prikhod'ko, A. I., Pritzkow, H. Encapsulation of Cyanometalates by a Tris-macrocyclic Ligand Tricopper(ii) Complex:Syntheses, Structural Variation, and Magnetic Exchange Coupling Pathways. Chem. Eur. J.2006,12,737.
    (m)Atanasov, M., Comba, P., Daul, C. A. Combined Ligand Field and Density Functional Theory Analysis of the Magnetic Anisotropy in Oligonuclear Complexes Based on FeⅢ-CN-MⅡ Exchange-Coupled Pairs. Inorg. Chem.2008,47,2449.
    (n)Atanasov, M., Busche, C., Comba, P., Hallak, F. E., Martin, B., Rajaraman, G., Slageren, J. van, Wadepohl, H., Trinuclear (M1)CN(M2)2 Complexes (M1= CrⅢ, FeⅢ, CoⅢ, M2= CuⅡ, NiⅡ, MnⅡ). Are Single Molecule Magnets Predictable? Inorg. Chem.2008,47,8112.
    [14]Lescouezec, R., Vaissermann, J., Ruiz-Perez, C., Lloret, F., Carrasco, R., Julve, M., Verdaguer, M., Dromzee, Y., Gatteschi, D., Wernsdorfer, W. Cyanide-bridged iron(III)-cobalt(II) double zigzag ferromagnetic chains:two new molecular magnetic nanowires. Angew. Chem., Int. Ed.2003,42,1483.
    [15]Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. [Fe(bpym)(CN)4]-:A New Building Block for Designing Single-Chain Magnets. J. Am. Chem. Soc.2006,128,4842. (e) Miyasaka, H., Julve, M., Yamashita, M., Clerac, R. Slow Dynamics of the Magnetization in One-Dimensional Coordination Polymers:Single-Chain Magnets. Inorg. Chem.2009, 48,3420.
    [16]Ni, W. W., Ni, Z. H., Cui, A. L., Liang, X., Kou, H. Z. Cyanide-Bridged MnⅢ-FeⅢ Bimetallic Complexes Based on the Pentacyano(1-methylimidazole)ferrate(III) Building Block:Structure and Magnetic Characterizations. Inorg. Chem.2007,46,22.
    [17]Toma, L. M., Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Cyanide-bridged Fe(III)-Co(II) bis-double zigzag chains with a slow relaxation of the magnetization. Chem. Commun.,2003,1850.
    [18](a) Liu, W., Wang, C. F., Li, Y. Z., Zuo, J. L., You, X. Z. Structural and Magnetic Studies on Cyano-Bridged Rectangular Fe2M2 (M= Cu, Ni) Clusters. Inorg. Chem.2006, 45,10058.
    (b)Wen, H. R., Wang, C. F., Song, Y., Gao, S., Zuo, J. L., You, X. Z. Synthesis, Crystal Structures, and Magnetic Properties of Cyano-Bridged Heterobimetallic Chains Based on [(Tp)Fe(CN)3]-. Inorg. Chem.2006,45,8942.
    (c)Gu, Z. G., Yang, Q. F., Liu, W., Song, Y, Li, T. Z., Zuo, J. L., You, X. Z. Cyano-Bridged Pentanuclear FeⅢ3MⅡ2 (M= Ni, Co, Fe) Clusters:Synthesis, Structures, and Magnetic Properties. Inorg. Chem.2006,45,8895.
    (d)Wang, S., Zuo, J. L., Zhou, H. C., Choi, H. J., Ke, Y., Long, J. R., You, X. Z. A cyanide-bridged face-centered-cubic cluster with single-molecule-magnet behavior. Angew. Chem., Int. Ed.2004,43,5940.
    (b)Wang, S., Zuo, J. L., Gao, S., Song, Y, Zhou, H. C., Zhang Y Z., You, X. Z. The observation of superparamagnetic behavior in molecular nanowires. J. Am. Chem. Soc.2004,126, 8900.
    [19]Li, D., Parkin, S., Wang, G., Yee, G. T., Prosvirin, A. V., Holmes, S. M. Single-molecule magnets constructed from cyanometalates:{[Tp*FeⅢ(CN)3MⅡ(DMF)4]2[OTf]2}·2DMF (MⅡ= Co, Ni). Inorg. Chem.2005,44,4903. Inorg. Chem.,2005,44,4903.
    [20](a) Lescouezec, R., Vaissermann, J., Lloret, F., Julve, M., Verdaguer, M. Ferromagnetic Coupling between Low-and High-Spin Iron(III) Ions in the Tetranuclear Complex fac-{[FeⅢ{HB(pz)3}(CN)2(i-CN)]3FeⅢ(H2O)3}·6H2O ([HB(pz)3]- = Hydrotris(1-pyrazolyl)borate). Inorg. Chem.2002,41,5943.
    (b)Yang, J. Y., Shores, M. P., Sokol, J. J., Long, J. R. High-nuclearity metal-cyanide clusters:synthesis, magnetic properties, and inclusion behavior of open-cage species incorporating [(tach)M(CN)3] (M =Cr, Fe, Co) complexes. Inorg. Chem.2003,42,1403.
    [21]Lescouezec, R., Vaissermann, J., Toma, L. M., Carrasco, R., Lloret, F., Julve, M. mer-[FeⅢ(bpca)(CN)3]-:A new low-spin iron(III) complex to build heterometallic ladder-like chains. Inorg. Chem.2004,43,2234.
    [22]Kim, Jae II, Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Ferrimagnetic FeⅢ-MnⅢ Zigzag Chain Formed by a New mer-Positioned Iron(III) Cyanide Precursor. Inorg. Chem.,2007,46,8481. Inorg. Chem.2007,46,8481. (b) Kim, Jae 11., Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Field-Induced Metamagnetic Transition in the FeⅢ-MnⅢ Bimetallic Chain Built by a New Cyanide-Bearing Fe(III) Precursor. Inorg. Chem.2007, 46,10461. (c) Kim, Jae II., Kwak, H. Y., Yoon, J. H., Ryu, D. W., Yoo, I., Yang, Y. N., Cho, B. K., Park, J. G., Lee, H., Hong, C. S. Cyanide-Bridged FeⅢ-MnⅢ Bimetallic Complexes with Dimeric and Chain Structures Constructed from a Newly Made mer-Fe Tricyanide:Structures and Magnetic Properties. Inorg. Chem.2009,48,2956. Inorg. Chem.2009,48,2956.
    [23]Ni, Z. H., Kou, H. Z., Zhang, L. F., Ni, W. W., Jiang, Y. B., Cui, A. L., Ribas, J., Sato, O. A novel cyanide-containing building block and its application to assembling cyanide-bridged trinuclear FeⅢ2MnⅡ complexes (pcq- = 8-(pyridine-2-carboxamido)quinoline anion). Inorg. Chem.2005,44,9631.
    [24](a) Ni, Z. H., Kou, H. Z., Zheng, L., Zhao, Y. H., Zhang, L. F., Wang, R. J., Cui, A. L., Sato, O. Assembly of azido-or cyano-bridged binuclear complexes containing the bulky [Mn(phen)2]2+ building block:syntheses, crystal structures, and magnetic properties. Inorg. Chem.2005,44,4728.
    (c)Ni, Z. H., Kou, H. Z., Zhao, Y. H., Zheng, L., Wang, R. J., Cui, A. L., Sato, O. [Fe(bpb)(CN)2]-as a versatile building block for the design of novel low-dimensional heterobimetallic systems:synthesis, crystal structures, and magnetic properties of cyano-bridged FeⅢ-NiⅡ complexes [(bpb)2-1,2-Bis(pyridine-2-carboxamido)benzenate]. Inorg. Chem.2005,44,2050. (d) Ni, Z. H., Zhang, L. F., Tangoulis, V., Wernsdorfer, W., Cui, A. L., Sato, O., Kou, H. Z. Substituent Effect on Formation of Heterometallic Molecular Wheels:Synthesis, Crystal Structure, and Magnetic Properties. Inorg. Chem.2007,46,6029.
    (d)Ni, Z. H., Tao, J., Wernsdorfer, W., Cui, A. L., Kou, H. Z. Supramolecular metallomacrocycles based on trans-dicyanoferrite(III) building blocks:synthesis, crystal structure and magnetic properties. J. Chem. Soc., Dalton Trans.2009,2788.
    [25]Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M., Llusar, R., Uriel, S. [Fe(Phen)(CN)4]-:a versatile building block for the design of heterometallic systems. crystal structures and magnetic properties of PPh4[Fe(Phen)(CN)4]·2H2O and [{Fe(Phen)(CN)4}2M(H2O)2]·4H2O [Phen= 1,10-phenanthroline, M= Mn(II) and Zn(II)]. Inorg. Chem.2001,40,2065.
    [26]Li, D. F., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. Synthesis and Spectroscopic and Magnetic Characterization of Tris(3,5-dimethylpyrazol-1-yl)borate Iron Tricyanide Building Blocks, a Cluster, and a One-Dimensional Chain of Squares. Inorg. Chem.2006, 45,1951.
    [27]McCann, S., McCann, M., Casey, R. M. T., Jackman, M., Devereux, M., McKee, V. Syntheses and X-ray crystal structures of cis-[Mn(bipy)2Cl2]·2H20·EtOH and cis-[Mn(phen)2Cl2] (bipy= 2,2'-bipyridine, Phen= 1,10-phenanthroline), catalysts for the disproportionation of hydrogen peroxide. Inorg. Chim. Acta.1998,279,24.
    [28]Nishida, Y., Oshio, S., Kida, S. Synthesis and Magnetic Properties of Iron(III) Complexes with Several Quadridentate Schiff Bases. Bull. Chem. Soc. Jpn.1977,50, 119.
    [29]Federica, B., Maria-Cristina, S., Julrgen, E., Andreas, S., Antonia, N., Helen, S. E., Silvio, D. Cyano-Bridged Structures Based on [MnII(N3O2-Macrocycle)]2+:A Synthetic, Structural, and Magnetic Study. Inorg. Chem.2005,44,969.
    [30]Omar, J. S., Daniel, R. R., Maria, R., del Jesus, H., Martha, S., Elena, T., Rafael, Z. U. Magnetostructural behaviour of the complex [MnL(H2O)2]Cl2·4H2O at variable temperature studied by electron spin resonance (L:5 2,13-dimethyl-3,6,9,12,18-pentaazabicyclo[12.3.1]octadeca-1(18),2,12,14,16-pentaene). J. Chem. Soc., Dalton Trans.1998,1551.
    [31](a) Bruker 2004. APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.
    (b)Sheldrick, G. M. SHELXL-97. Program for X-ray Crystal Structure Solution and Refinement, Gottingen University, Germany 1997.
    [32]Zhang, D. P., Wang, H. L., Chen, Y. T., Ni, Z. H., Tian, L. J., Jiang, J. Z. Rational Design and Assembly of a New Series of Cyanide-Bridged FeⅢ-Mn" One-Dimensional Single Chain Complexes:Synthesis, Crystal Structures, and Magnetic Properties. Inorg. Chem.2009,48,5488.
    [33](a) Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. [Fe(bipy)(CN)4]- as a Versatile Building Block for the Design of Heterometallic Systems:Synthesis, Crystal Structure, and Magnetic Properties of PPh4[FeⅢ(bipy)(CN)4]·H2O, [{FeⅢ(bipy)(CN)4}2M"(H2O)4]-4H2O, and [{FeⅢ(bipy)(CN)4}2ZnⅡ]·2H2O [bipy= 2,2'-Bipyridine, M= Mn and Zn]. Inorg. Chem. 2002,41,818. Inorg. Chem.,2002,41,818.
    (b)Kim, J., Han, S., Cho, I. K., Choi, K. Y, Heu, M., Yoon, S., Suh, B. J. Synthesis of a cyano-bridged Fe2Mn linear unit and a Fe2Mn2 square unit by using the [fac-Fe{HB(pz)3}(CN)3]-building block. Polyhedron 2001,23,1333.
    [34]Kang, S. G., Ryu, K., Jung S. K., Kim, J. Inorg. Chim. Acta.1999,293,140.
    [35](a) Chiari, B., Cinti, A., Piovesana, O., Zanazzi, P. F. Exchange Interactions in the Bimetallic Chain Compound Cu(ethylenediamine)2MnCl4. Inorg. Chem.1995,34,2652.
    (b)Burla, M. C., Chiari, B., Cinti, A., Piovesana, O. Structure and Magnetism of a New 2-D Bimetallic Compound of Mn(II) and Cu(II). Mol. Cryst. Liq. Cryst.1995,273,211.
    (c)Aneschi, A., Gatteschi, D., Melandri, M. C., Rey, P., Sessoli, R. Structure and Magnetic Properties of Manganese(Ⅱ) Carboxylate Chains with Nitronyl Nitroxides and Their Reduced Amidino-Oxide Derivatives. From Random-Exchange One-Dimensional to Two-Dimensional Magnetic Materials. Inorg. Chem.1990,29,4228.
    (d)Wrzeszcz, G., Dobrzan'ska, L., Wojtczak, A., Grodzicki, A. Magnetostructural characterisation of the first bimetallic assemblies derived from the anionic building block [Cr(NCS)6]3· [M(en)3]n-[{M(en)2-μ-SCN-Cr(NCS)4-μ-NCS}2n] with M= Ni(Ⅱ), Zn(II). J. Chem. Soc., Dalton Trans.2002,2862.
    [1](a) Sato, O. Acc. Chem. Res.,2003,36,692.
    (b)Lescouezec, R., Toma, L. M., Vaissermann, J., Verdaguer, M., Delgado, F. S., Ruiz-Perez, C., Lloret, F., Julve, M. Coord Chem. Rev.,2005,249,2691.
    (c)Beltran L. M. C., Long, J. R. Acc. Chem. Res.,2005,38, 325.
    [2](a) Rebilly J. N., Mallah, T. Struct. bond.,2006,122,103.
    (b)Toma, L. M., Toma, L. D., Delgado, F. S., Ruiz-Pe'rez, C., Sletten, J., Cano, J., Clemente-Juan, J. M., Lloret, F., Julve, M. Coord. Chem. Rev.,2006,250,2176.
    (c)Miyasaka, H., Saitoh A., Abe, S. Coord. Chem. Rev,2007,251,2622.
    [3](a) Ohkoshi, S.-i., Tokoro, H., Hozumi, T. Z. Y., Hashimoto, K., Mathonie're, C., Bord, I., Rombaut, G., Verlelst, M., Moulin, C. C. D., Villain, F. J. Am. Chem. Soc.,2006,128,270.
    (b)Ohkoshi, S.-i., Ikeda, S., Hozumi, T., Kashiwagi, T., Hashimoto, K. J. Am. Chem. Soc., 2006,128,5320.
    [4](a) Smith, J. A., Galan-Mascaros, J. R., Clerac R., Dunbar, K. R. Chem. Commun.2000, 1077.
    (b)Kaneko, W., Kitagawa S., Ohba, M. J. Am. Chem. Soc.,2007,129,248.
    (c) Funck, K. E., Hilfiger, M. G., Berlinguette, C. P., Shatruk, M., Wernsdorfer W., Dunbar, K. R. Inorg. Chem.,2009,48,3438.
    [5]Visinescu, D., Desplanches, C., Imaz, I., Bahers, V., Pradhan, R., Villamena, F. A., Guionneau, P., Sutter, J. P. J. Am.Chem. Soc.,2006,128,10202.
    [6]Song, Y., Zhang, P., Ren, X. M., Shen, X. F., Li, Y. Z., You, X. Z. J. Am. Chem. Soc., 2005,127,3708.
    [7](a) Lim, J. H., Yoon, J. H., Kim, H. C., Hong, C. S. Angew. Chem., Int. Ed,2006,45, 7424.
    (b)Freedman, D. E., Bennett, M. V., Long, J. R. Dalton Trans.,2006,2829.
    (c) Yoon, J. H., Yoo, H. S., Kim, H. C., Yoon, S. W., Suh, B. J., Hong, C. S. Inorg. Chem., 2009,48,816.
    [8](a) Galet, A., Munoz, M. C., Real, J. A. Inorg. Chem.,2006,45,4583.
    (b)Agusti, G., Munoz, M. C., Real, J. A. Inorg. Chem.,2008,47,2552.
    (c)Agusti, G., Munoz, M. C., Gaspar, A. B., Real, J. A. Inorg. Chem.,2009,48,3371.
    [9](a) Gao, S., Sun, H. L., Su, G., Wang, Z. M., Zhang, S. W. Chem. Commun.,2004,1906.
    (b)Kou, H. Z., Zhou, B. C., Gao S., Wang, R. J. Angew. Chem. Int. Ed.,2003,42,3288.
    (c)Yeung, W. F., Lau, P. H., Wang, X. Y., Gao, S., Szeto, L., Wong, W. T. Inorg. Chem., 2006,45,6756.
    [10](a) Jiang, L., Feng, X. L., Lu, T. B., Gao, S. Inorg. Chem.,2006,45,5018.
    (b)Jiang, L., Choi, H. J., Feng, X. L., Lu, T. B., Long, J. R. Inorg. Chem.,2007,46,2181.
    [11](a) Miyasaka, H., Yamashita, M. Dalton Trans.,2007,399, and references therein.
    (b) Bleuzen, A., Marvaud, V., Mathoniere, C., Sieklucka, B., Verdaguer, M. Inorg. Chem., 2009,48,3453. and references therein.
    [12](a) Sokol, J. J., Hee A. G., Long, J. R. J. Am. Chem. Soc.,2002,124,7656.
    (b) Berlinguette, C. P., Vaughn, D., Canada-Vilalta, C., Galan-Mascaros, J. R., Dunbar, K. R. Angew. Chem., Int. Ed.,2003,42,1523.
    (c)Mironov, V. S., Chibotaru, L. F., Ceulemans, A. J. Am. Chem. Soc.,2003,125,9750.
    (d)Choi, H. J., Sokol J. J., Long, J. R. Inorg. Chem.,2004,43,1606.
    (e)Schelter, E. J., Prosvirin, A. V., Dunbar, K. R. J. Am. Chem. Soc.,2004,126,15004.
    (f)Ni, Z. H., Kou, H. Z., Zhang, L. F., Ge, C., Cui, A. L., Wang, R. J., Li, Y., Sato, O. Angew. Chem., Int. Ed.,2005,44,7742.
    [13](a) Miyasaka, H., Takahashi, H., Madanbashi, H., Sugiura, K., Clerac, R., Nojiri, H. Inorg. Chem.,2005,44,5969.
    (b)Li, D. F., Clerac, R., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. Inorg. Chem.,2006,45,5251.
    (c)Li, D., Parkin, S., Wang, G., Yee, G T., Clerac, R., Wernsdorfer, W., Holmes, S. M. J. Am. Chem. Soc.,2006,128,4214.
    (d) Wang, C. F., Zuo, J. L., Bartlett, B. M., Song, Y, Long, J. R., You, X. Z. J. Am. Chem. Soc.,2006,128,7162.
    (e)Yoon, J. H., Lim, J. H., Kim, H. C., Hong, C. S. Inorg. Chem., 2006,45,9613.
    (f)Atanasov, M., Comba, P., Lampeka, Y. D., Linti, G., Malcherek, T., Miletich, R., Prikhod'ko, A. I., Pritzkow, H. Chem. Eur. J.,2006,12,737.
    (g)Atanasov, M., Comba, P., Daul, C. A. Inorg. Chem.,2008,47,2449.
    (h)Atanasov, M., Busche, C., Comba, P., Hallak, F. E., Martin, B., Rajaraman, G., van Slageren, J., Wadepohl, H. Inorg. Chem.,2008,47,8112.
    [14](a) Lescouezec, R., Vaissermann, J., Ruiz-Perez, C., Lloret, F., Carrasco, R., Julve, M., Verdaguer, M., Dromzee, Y., Gatteschi, D., Wernsdorfer, W. Angew. Chem., Int. Ed., 2003,42,1483.
    (b)Toma, L. M., Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Chem. Commun.,2003,1850.
    (c)Li, D. F., Parkin, S., Wang, G., Yee, G T., Prosvirin, A. V., Holmes, S. M. Inorg. Chem.,2005,44,4903
    [15](d) Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. J. Am. Chem. Soc.,2006,128,4842.
    (e)Miyasaka, H., Julve, M., Yamashita, M., Clerac, R. Inorg. Chem.,2009,48,3420.
    [16]Ni, W. W., Ni, Z. H., Cui, A. L., Liang, X., Kou, H. Z. Inorg. Chem.,2007,46,22.
    [17](a) Toma, L. M., Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Chem. Commun.,2003,1850.
    (b)Lescouezec, R., Vaissermann, J., Ruiz-Perez, C., Lloret, F., Carrasco, Julve, M., Verdaguer, R. M., Dromzee, Y, Gatteschi, D., Wernsdorfer, W. Angew. Chem., Int. Ed.,2003,42,1483.
    (c)Toma, L. M., Lescouezec, R., Pasan, J., Ruiz-Perez, C., Vaissermann, J., Cano, J., Carrasco, R., Wernsdorfer, W., Lloret, F., Julve, M. J. Am. Chem. Soc.,2006,128,4842.
    [18](a) Liu, W., Wang, C. F., Li, Y Z., Zuo, J. L., You, X. Z. Inorg. Chem.,2006,45,10058.
    (b)Wen, H. R., Wang, C. F., Song, Y, Gao, S., Zuo, J. L., You, X. Z. Inorg. Chem.,2006, 45,8942.
    (c)Gu, Z. G., Yang, Q. F., Liu, W., Song, Y, Li, T. Z., Zuo, J. L., You, X. Z. Inorg. Chem.,2006,45,8895.
    (d)Wang, S., Zuo, J. L., Zhou, H. C., Choi, H. J., Ke, Y, Long, J. R., You, X. Z. Angew. Chem., Int. Ed.,2004,43,5940.
    (e)Wang, S., Zuo, J. L. Gao, S., Song, Y, Zhuo, H. C., Zhang, Y Z., You, X. Z. J. Am. Chem. Soc.,2004,126, 8900.
    [19](a) Li, D., Parkin, S., Wang, G., Yee, G T., Prosvirin, A. V, Holmes, S. M. Inorg. Chem., 2005,44,4903.
    (b)Li, D., Parkin, S., Wang, G, Yee, G., Cle'rac, T. R., Wernsdorfer, W., Holmes, S. M. J. Am. Chem. Soc.,2006,128,4214.
    [20](a) Lescouezec, R., Vaissermann, J., Lloret, F., Julve, M., Verdaguer, M. Inorg. Chem., 2002,41,5943.
    (b)Yang, J. Y., Shores, M. P., Sokol, J. J., Long, J. R. Inorg. Chem.,2003, 42,1403.
    [21]Lescouezec, R., Vaissermann, J., Toma, L. M., Carrasco, R., Lloret, F., Julve, M. Inorg. Chem.,2004,43,2234.
    [22]Kim, Jae Ⅱ, Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Inorg. Chem.,2007,46, 8481.
    (b)Kim, Jae Ⅱ, Yoo, H. S., Koh, E. K., Kim, H. C., Hong, C. S. Inorg. Chem., 2007,46,10461.
    (c)Kim, Jae II., Kwak, H. Y, Yoon, J. H., Ryu, D. W., Yoo, I., Yang, Y N., Cho, B. K., Park, J. G., Lee, H., Hong, C. S. Inorg. Chem.,2009,48,2956.
    [23]Ni, Z. H., Kou, H. Z., Zhang, L. F., Ni, W. W., Jiang, Y. B., Cui, A. L., Ribas, J., Sato, O. Inorg. Chem.,2005,44,9631.
    [24](a) Ni, Z. H., Kou, H. Z., Zheng, L., Zhao, Y. H., Zhang, L. F., Wang, R. J., Cui, A. L Sato, O. Inorg. Chem.,2005,44,4728.
    (b)Ni, Z. H., Kou, H. Z., Zhao, Y. H., Zheng, L. Wang, R. J., Cui, A. L., Sato, O. Inorg. Chem.,2005,44,2050.
    (c)Ni, Z. H., Zhang, L. F., Tangoulis, V., Wernsdorfer, W., Cui, A. L., Sato, O., Kou, H. Z. Inorg. Chem.,2007,46, 6029.
    (d)Ni, Z. H., Tao, J., Wernsdorfer, W., Cui, A. L., Kou, H. Z. J. Chem. Soc.(?) Dalton Trans.2009,2788.
    [25]Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M., Llusar, R., Uriel, S. Inorg. Chem.,2001,40,2065.
    [26]Li, D. F., Parkin, S., Wang, G. B., Yee, G. T., Holmes, S. M. Inorg. Chem.,2006,45, 1951.
    [27]McCann, S., McCann, M., Casey, R. M. T., Jackman, M., Devereux, M., McKee, V. Inorg. Chim. Acta.,1998,279,24.
    [28]Nishida, Y, Oshio, S., Kida, S. Bull. Chem. Soc. Jpn.,1977,119,50.
    [29]Federica, B., Maria-Cristina, S., Julrgen, E., Andreas, S., Antonia, N., Helen, S. E., Silvio, D. Inorg. Chem.,2005,44,969.
    [30]Omar, J. S., Daniel, R. R., Maria, R., del Jesus, H., Martha, S., Elena, T., Rafael, Z. U. J. Chem. Soc., Dalton Trans.,1998,1551.
    [31](a) Bruker 2004. APEX2. Bruker AXS Inc., Madison, Wisconsin, USA.
    (b)Sheldrick, G. M. SHELXL-97. Program for X-ray Crystal Structure Solution and Refinement, Gottingen University, Germany 1997.
    [32]Zhang, D. P., Wang, H. L., Chen, Y. T., Ni, Z. H., Tian, L. J., Jiang, J. Z. Inorg. Chem. 2009,48,5488.
    [33](a) Lescouezec, R., Lloret, F., Julve, M., Vaissermann, J., Verdaguer, M. Inorg. Chem., 2002,41,818.
    (b)Kim, J., Han, S., Cho, I. K., Choi, K. Y., Heu, M., Yoon, S., Suh, B. J. Polyhedron,2001,23,1333.
    [34]Kang, S. G., Ryu, K., Jung S. K., Kim, J. Inorg. Chim. Acta.,1999,293,140.
    [35](a) Chiari, B., Cinti, A., Piovesana, O., Zanazzi, P. F. Inorg. Chem.,1995,34,2652.
    (b) Burla, M. C., Chiari, B., Cinti, A., Piovesana, O. Mol. Cryst. Liq. Cryst.,1995,273,211.
    (c)Aneschi, A., Gatteschi, D., Melandri, M. C., Rey, P., Sessoli, R. Inorg. Chem.,1990, 29,4228.
    (d)Wrzeszcz, G, Dobrzanska, L., Wojtczak, A., Grodzicki, A. J. Chem. Soc., Dalton Trans.,2002,2862.

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