Nanostructured and/or Nanoscale Lanthanide Metal-Organic Frameworks
详细信息    查看全文
  • 作者:Zhonghao Zhang (3)
    Zhiping Zheng (3)
  • 关键词:Lanthanide clusters ; Nanoporous MOFs ; Nanoscale LnMOFs ; Optical and magnetic imaging ; Sensing by luminescence
  • 刊名:Structure & Bonding
  • 出版年:2015
  • 出版时间:2015
  • 年:2015
  • 卷:163
  • 期:1
  • 页码:297-367
  • 全文大小:3,902 KB
  • 参考文献:1. Lee J, Farha OK, Roberts J, Scheidt KA, Nguyen ST, Hupp JT (2009) Metal-organic framework materials as catalysts. Chem Soc Rev 38:1450鈥?459
    2. Ma LQ, Abney C, Lin WB (2009) Enantioselective catalysis with homochiral metal-organic frameworks. Chem Soc Rev 38:1248鈥?256
    3. Ma LQ, Falkowski JM, Abney C, Lin WB (2010) A series of isoreticular chiral metal-organic frameworks as a tunable platform for asymmetric catalysis. Nat Chem 2:838鈥?46
    4. Dinca M, Long JR (2008) Hydrogen storage in microporous metal-organic frameworks with exposed metal sites. Angew Chem Int Ed 47:6766鈥?779
    5. Rowsell JLC, Yaghi OM (2005) Strategies for hydrogen storage in metal-organic frameworks. Angew Chem Int Ed 44:4670鈥?679
    6. Xie ZG, Ma LQ, deKrafft KE, Jin A, Lin WB (2010) Porous phosphorescent coordination polymers for oxygen sensing. J Am Chem Soc 132:922鈥?23
    7. Chen BL, Xiang SC, Qian GD (2010) Metal-organic frameworks with functional pores for recognition of small molecules. Acc Chem Res 43:1115鈥?124
    8. Evans OR, Lin WB (2002) Crystal engineering of NLO materials based on metal-organic coordination networks. Acc Chem Res 35:511鈥?22
    9. Liu Y, Xuan WM, Cui Y (2010) Engineering homochiral metal-organic frameworks for heterogeneous asymmetric catalysis and enantioselective separation. Adv Mater 22:4112鈥?135
    10. Li JR, Kuppler RJ, Zhou HC (2009) Selective gas adsorption and separation in metal-organic frameworks. Chem Soc Rev 38:1477鈥?504
    11. Kong XJ, Long LS, Zheng ZP, Huang RB, Zheng LS (2010) Keeping the ball rolling: fullerene-like molecular clusters. Acc Chem Res 43:201鈥?09
    12. Eliseeva SV, B眉nzli JCG (2010) Lanthanide luminescence for functional materials and bio-sciences. Chem Soc Rev 39:189鈥?27
    13. Peng JB, Zhang QC, Kong XJ, Ren Y, Long LS, Huang RB, Zheng LS, Zheng ZP (2011) A 48-metal cluster exhibiting a large magnetocaloric effect. Angew Chem Int Ed 50:10649鈥?0652
    14. Boglio C, Lemi猫re G, Hasenknopf B, Thorimbert S, Lac么te E, Malacria M (2006) Lanthanide complexes of the monovacant Dawson polyoxotungstate [伪1-P2W17O61]10- as selective and recoverable Lewis acid catalysts. Angew Chem Int Ed 45:3324鈥?327
    15. Du DY, Qin JS, Li SL, Su ZM, Lan YQ (2014) Recent advances in porous polyoxometalate-based metal-organic framework materials. Chem Soc Rev. doi:10.1039/c3cs60404g
    16. F茅rey G, Mellot-Draznieks C, Serre C, Millange F (2005) Crystallized frameworks with giant pores: are there limits to the possible? Acc Chem Res 38:217鈥?25
    17. Zhao M, Ou S, Wu CD (2014) Porous metal-organic frameworks for heterogeneous biomimetic catalysis. Acc Chem Res 47:1199鈥?207
    18. Zhao D, Timmons DJ, Yuan D, Zhou HC (2011) Tuning the topology and functionality of metal-organic frameworks by ligand design. Acc Chem Res 44:123鈥?33
    19. Furukawa H, Ko N, Go YB, Aratani N, Choi SB, Choi E, Yazaydin A脰, Snurr RQ, O鈥橩eeffe M, Kim J, Yaghi OM (2010) Ultrahigh porosity in metal-organic frameworks. Science 329:424鈥?28
    20. Deng H, Grunder S, Cordova KE, Valente C, Furukawa H, Hmadeh M, G谩ndara F, Whalley AC, Liu Z, Asahina S, Kazumori H, O鈥橩eeffe M, Terasaki O, Stoddart JF, Yaghi OM (2012) Large-pore apertures in s series of metal-organic frameworks. Science 336:1018鈥?023
    21. Getman RB, Bae YS, Wilmer CE, Snurr RQ (2012) Review and analysis of molecular simulations of methane, hydrogen, and acetylene storage in metal-organic frameworks. Chem Rev 112:703鈥?23
    22. Li M, Li D, O鈥橩eeffe M, Yaghi OM (2014) Topological analysis of metal-organic frameworks with polytopic linkers and/or multiple building units and the minimal transitivity principle. Chem Rev 114:1343鈥?370
    23. Wang R, Carducci MD, Zheng Z (2000) Direct hydrolytic route to molecular oxo-hydroxo lanthanide clusters. Inorg Chem 39:1836鈥?837
    24. Tang XL, Wang WH, Dou W, Jiang J, Liu WS, Qin WW, Zhang GL, Zhang HR, Yu KB, Zheng LM (2009) Olive-shaped chiral supramolecules: simultaneous self-assembly of heptameric lanthanum clusters and carbon dioxide fixation. Angew Chem Int Ed 48:3499鈥?502
    25. Xu J, Raymond KN (2000) Lord of the rings: an octameric lanthanum pyrazolonate cluster. Angew Chem Int Ed 39:2745鈥?747
    26. Wu Y, Morton S, Kong X, Nichol GS, Zheng Z (2011) Hydrolytic synthesis and structural characterization of lanthanide-acetylacetonato/hydroxo cluster complexes 鈥?a systematic study. Dalton Trans 40:1041鈥?046
    27. Westin LG, Kritikos M, Caneschi A (2003) Self assembly, structure and properties of the decanuclear lanthanide ring complex, Dy10(OC2H4OCH3)30. Chem Commun 2003:1012鈥?013
    28. Wang R, Selby HD, Liu H, Carducci MD, Jin T, Zheng Z, Anthis JW, Staples RJ (2002) Halide-templated assembly of polynuclear lanthanide-hydroxo complexes. Inorg Chem 41:278鈥?86
    29. Chesman ASR, Turner DR, Moubaraki B, Murray KS, Deacon GB, Batten SR (2009) Lanthaballs: chiral, structurally layered polycarbonate tridecanuclear lanthanoid clusters. Chem Eur J 15:5203鈥?207
    30. B眉rgstein MR, Roesky PW (2000) Nitrophenolate as a building block for lanthanide chains and clusters. Angew Chem Int Ed 39:549鈥?51
    31. Wang R, Zheng Z, Jin T, Staples RJ (1999) Coordination chemistry of lanthanides at 鈥渉igh鈥?pH: synthesis and structure of the pentadecanuclear complex of europium(III) with tyrosine. Angew Chem Int Ed 38:1813鈥?815
    32. Thielemann DT, Wagner AT, R枚sch E, K枚lmel DK, Heck JG, Rudat B, Neumaier M, Feldmann C, Schepers U, Br盲se S, Roesky PW (2013) Luminescent cell-penetrating pentadecanuclear lanthanide clusters. J Am Chem Soc 135:7454鈥?457
    33. Malaestean IL, Ellern A, Baca S, K枚gerler P (2012) Cerium oxide nanoclusters: commensurate with concepts of polyoxometalate chemistry. Chem Commun 48:1499鈥?501
    34. Chang LX, Xiong G, Wang L, Cheng P, Zhao B (2013) A 24-Gd nanocapsule with a large magnetocaloric effect. Chem Commun 49:1055鈥?057
    35. Chen L, Huang L, Wang C, Fu J, Zhang D, Zhu D, Xu Y (2012) Hydrothermal synthesis, structure, and properties of two new nanosized Ln26 (Ln = Ho, Er) clusters. J Coord Chem 65:958鈥?68
    36. Wu M, Jiang F, Kong X, Yuan D, Long L, Al-Thabaiti SA, Hong M (2013) Two polymeric 36-metal pure lanthanide nanosized clusters. Chem Sci 4:3104鈥?109
    37. Guo FS, Chen YC, Mao LL, Lin WQ, Leng JD, Tarasenko R, Orend谩膷 M, Prokle拧ka J, Sechovsk媒 V, Tong ML (2013) Anion-templated assembly and magnetocaloric properties of a nanoscale {Gd38} cage versus a {Gd48} barrel. Chem Eur J 19:14876鈥?4885
    38. Kong XJ, Wu Y, Long LS, Zheng LS, Zheng Z (2009) A chiral 60-metal sodalite cage featuring 24 vertex-sharing [Er4(渭3-OH)4] cubanes. J Am Chem Soc 131:6918鈥?919
    39. Ma BQ, Zhang DS, Gao S, Jin TZ, Yan CH, Xu GX (2000) From cubane to supercubane: the design, synthesis, and structure of a three-dimensional open framework based on a Ln4O4 cluster. Angew Chem Int Ed 112:3790鈥?792
    40. Wang R, Liu H, Carducci MD, Jin T, Zheng C, Zheng Z (2001) Lanthanide coordination with 伪-amino acids under near physiological pH conditions: polymetallic complexes containing the cubane-like [Ln4(渭3-OH)4]8+ cluster core. Inorg Chem 40:2743鈥?750
    41. Mah茅 N, Guillou O, Daiguebonne C, G茅rault Y, Caneschi A, Sangregorio C, Chane-Ching JY, Car PE, Roisnel T (2005) Polynuclear lanthanide hydroxo complexes: new chemical precursors for coordination polymers. Inorg Chem 44:7743鈥?750
    42. Calvez G, Daiguebonne C, Guillou O (2011) Unprecedented lanthanide-containing coordination polymers constructed from hexanuclear molecular building blocks: {[Ln6O(OH)8](NO3)2(bdc)(Hbdc)2路2NO3路H2bdc}鈭?/sub>. Inorg Chem 50:2851鈥?858
    43. Natur FL, Calvez G, Daiguebonne C, Guillou O, Bernot K, Ledoux J, Poll猫s LL, Roiland C (2013) Coordination polymers based on heterohexanuclear rare earth complexes: toward independent luminescence brightness and color tuning. Inorg Chem 52:6720鈥?730
    44. G谩ndara F, Guti茅rrez-Puebla E, Iglesias M, Snejko N, Monge M脕 (2010) Isolated hexanuclear hydroxo lanthanide secondary building units in a rare-earth polymeric framework based on / p-sulfonatocalix[4]arene. Cryst Growth Des 10:128鈥?34
    45. Shi FN, Cunha-Silva L, Trindade T, Paz FAA, Rocha J (2009) Three-dimensional lanthanide-organic frameworks based on di-, tetra-, and hexameric clusters. Cryst Growth Des 9:2098鈥?109
    46. Yuan N, Sheng T, Tian C, Hu S, Fu R, Zhu Q, Tan C, Wu X (2011) Synthesis, structures and properties of three-dimensional lanthanide frameworks constructed with a trigonal anti-prismatic lanthanide cluster. CrystEngComm 13:4244鈥?250
    47. Zheng XJ, Jin LP, Gao S (2004) Synthesis and characterization of two novel lanthanide coordination polymers with an open framework based on an unprecedented [Ln7(渭3-OH)8]13+ cluster. Inorg Chem 43:1600鈥?602
    48. Fang WH, Cheng L, Huang L, Yang GY (2013) A series of lanthanide-based cluster organic frameworks made of heptanuclear tironal-prismatic cluster units. Inorg Chem 52:6鈥?
    49. Chen L, Guo JY, Xu X, Ju WW, Zhang D, Zhu DR, Xu Y (2013) A novel 2-D coordination polymer constructed from high-nuclearity waist drum-like pure Ho48 clusters. Chem Commun 49:9728鈥?730
    50. Wu M, Jiang F, Yuan D, Pang J, Qian J, AL-Thabaiti SA, Hong M (2014) Polymeric double-anion template Er48 nanotubes. Chem Commun 50:1113鈥?115
    51. Liu J, Meyers EA, Shore SG (1998) An unusual cyanide bridging lanthanide-transition metal complex that contains the on-dimensional cationic array {[(DMF)16Yb6(渭6-O)(渭3-OH)8(渭-NC)Pd(渭-CN)(CN)2]6+}鈭?/sub>. Inorg Chem 37:5410鈥?411
    52. Chen LF, Zhang J, Ren GQ, Li ZJ, Qin YY, Yin PX, Cheng JK, Yao YG (2008) Nanosized lanthanide oxide rods in I1O3 hybrid organic鈥搃norganic frameworks involving / in situ ligand synthesis. CrystEngComm 10:1088鈥?092
    53. Fang WH, Yang GY (2014) Pillared-layer cluster organic frameworks constructed from nanoscale Ln10 and Cu16 clusters. Inorg Chem 53(11):5631鈥?636. doi:10.1021/ic500404z
    54. Zhang MB, Zhang J, Zheng ST, Yang GY (2005) A 3D coordination framework based on linkages of nanosized hydroxo lanthanide clusters and copper clusters by isonicotinate ligands. Angew Chem Int Ed 44:1385鈥?388
    55. Cheng JW, Zhang J, Zheng ST, Yang GY (2008) Linking two distinct layered networks of nanosized {Ln18} and {Cu24} wheels through isonicotinate ligands. Chem Eur J 14:88鈥?7
    56. Fang WH, Cheng JW, Yang GY (2014) Two series of sandwich frameworks based on two different kinds of nanosized lanthanide(III) and copper(I) wheel cluster units. Chem Eur J 20:2704鈥?711
    57. Gu X, Xue D (2007) Surface modification of high-nuclearity lanthanide clusters: two tetramers constructed by cage-shaped {Dy26} clusters and isonicotinate linkers. Inorg Chem 46:3212鈥?216
    58. Huang L, Han L, Feng W, Zheng L, Zhang Z, Xu Y, Chen Q, Zhu D, Niu S (2010) Two 3D coordination frameworks based on nanosized huge Ln26 (Ln = Dy and Gd) spherical clusters. Cryst Growth Des 10:2548鈥?552
    59. Cheng JW, Zhang J, Zheng ST, Zhang MB, Yang GY (2006) Lanthanide-transition-metal sandwich framework comprising {Cu3} cluster pillars and layered networks of {Er36} wheels. Angew Chem Int Ed 45:73鈥?7
    60. Zou X, Conradsson T, Klingstedt M, Dadachov MS, O鈥橩eeffe M (2005) A mesoporous germanium oxide with crystalline pore walls and its chiral derivative. Nature 437:716鈥?19
    61. Pan CY, Liu GZ, Zheng ST, Yang GY (2008) GeB4O9路H2en: an organically template borogermanate with large 12-ring channels built by B4O9 polyanions and GeO4 units: host鈥揼uest symmetry and charge matching in triangular-tetrahedral frameworks. Chem Eur J 14:5057鈥?063
    62. Liu GZ, Zheng ST, Yang GY (2007) In2Ge6O15(OH)2(H2dien): an open-framework indate germanate with one-dimensional 12-ring channels. Angew Chem Int Ed 46:2827鈥?830
    63. He H, Cao GJ, Zheng ST, Yang GY (2009) Lanthanide germanate cluster organic frameworks constructed from {Ln8Ge12} or {Ln11Ge12} cage cluster building blocks. J Am Chem Soc 131:15588鈥?5589
    64. Becker R, Johnsson M, Kremer RK, Klauss HH, Lemmens P (2006) Crystal structure and magnetic properties of FeTe2O5X (X = Cl, Br): A frustrated spin cluster compound with a new Te(IV) coordination polyhedron. J Am Chem Soc 128:15469鈥?5475
    65. Cao X, Lu Z, Zhu L, Yang L, Gu L, Cai L, Chen J (2014) A new family of sunlight-driven bifunctional photocatalysts based on TiO2 nanoribbon frameworks and bismuth oxohalide nanoplates. Nanoscale 6:1434鈥?444
    66. Hu B, Feng ML, Li JR, Lin QP, Huang XY (2011) Lanthanide antimony oxohalides: from discrete nanoclusters to inorganic鈥搊rganic hybrid chains and layers. Angew Chem Int Ed 50:8110鈥?113
    67. Hu B, Zou GD, Feng ML, Huang XY (2012) Inorganic鈥搊rganic hybrid compounds based on novel lanthanide-antimony oxohalide nanoclusters. Dalton Trans 41:9879鈥?881
    68. Zou GD, Zhang GG, Hu B, Li JR, Feng ML, Wang XC, Huang XY (2013) A 3D hybrid praseodymium-antimony-oxochloride compound: single-crystal-to-single-crystal transformation and photocatalytic properties. Chem Eur J 19:15396鈥?5403
    69. Zheng YZ, Evangelisti M, Winpenny REP (2011) Large magnetocaloric effect in a Wells鈥揇awson type {Ni6Gd6P6} cage. Angew Chem Int Ed 50:3692鈥?695
    70. Karotsis G, Evangelisti M, Dalgarno SJ, Brechin EK (2009) A calix[4]arene 3d/4f magnetic cooler. Angew Chem Int Ed 48:9928鈥?931
    71. Cui Y, Yue Y, Qian G, Chen B (2012) Luminescent functional metal-organic frameworks. Chem Rev 112:1126鈥?162
    72. Liu Q, Ge SZ, Zhong JC, Sun YQ, Chen YP (2013) Two novel 2D lanthanide鈥揷admium heterometal鈥搊rganic frameworks based on nanosized heart-like Ln6Cd6O12 wheel-clusters exhibiting luminescence sensing to the polarization and concentration of cations. Dalton Trans 42:6314鈥?317
    73. Li G, Akitsu T, Sato O, Einaga Y (2003) Photoinduced magnetization of the cyano-bridged 3d-4f heterobimetallic assembly Nd(DMF)4(H2O)3(渭-CN)Fe(CN)5路H2O (DMF = / N, / N-Dimethylformamide). J Am Chem Soc 125:12396鈥?2397
    74. Zhao B, Chen XY, Chen Z, Shi W, Cheng P, Yan SP, Liao DZ (2009) A porous 3D heterometal鈥搊rganic framework containing both lanthanide and high-spin Fe(II) ions. Chem Commun 2009:3113鈥?115
    75. He YP, Tan YX, Zhang J (2013) Gas sorption, second-order nonlinear optics, and luminescence properties of a series of lanthanide-organic frameworks based on nanosized tris((4-carboxyl)phenylduryl)amine ligand. Inorg Chem 52:12758鈥?2762
    76. Ma ML, Ji C, Zhang SQ (2013) Synthesis, structures, tunable emission and white light emitting Eu3+ and Tb3+ doped lanthanide metal-organic framework materials. Dalton Trans 42:10579鈥?0586
    77. Zhu XD, Lin ZJ, Liu TF, Xu B, Cao R (2012) Two novel 3d-4f heterometallic frameworks assembled from a flexible bifunctional macrocyclic ligand. Cryst Growth Des 12:4708鈥?711
    78. Ghosh SK, Bharadwaj PK (2005) Coordination polymers of La(III) as bunched infinite nanotubes and their conversion into an open-framework structure. Inorg Chem 44:3156鈥?161
    79. Chen SP, Ren YX, Wang WT, Gao SL (2010) Nanoporous lanthanide-carboxylate frameworks based on 5-nitroisophthalic acid. Dalton Trans 39:1552鈥?557
    80. Cai B, Yang P, Dai JW, Wu JZ (2011) Tuning the porosity of lanthanide MOFs with 2,5-pyrazinedicarboxylate and the first / in situ hydrothermal carboxyl transfer. CrystEngComm 13:985鈥?91
    81. Lopez N, Zhao H, Zhao D, Zhou HC, Riebenspies JP, Dunbar KR (2013) A porous Sm(III) coordination nanotube with hydrophobic and hydrophilic channels. Dalton Trans 42:54鈥?7
    82. Sumida K, Rogow DL, Mason JA, McDonald TM, Block ED, Herm ZR, Bae TH, Long JR (2012) Carbon dioxide capture in metal-organic frameworks. Chem Rev 112:724鈥?81
    83. Suh MP, Park HJ, Prasad TK, Lim DW (2012) Hydrogen storage in metal-organic frameworks. Chem Rev 112:782鈥?35
    84. Wu H, Gong Q, Olson DH, Li J (2012) Commensurate adsorption of hydrocarbons and alcohols in microporous metal organic frameworks. Chem Rev 112:836鈥?68
    85. Luo J, Xu H, Liu Y, Zhao Y, Daemen LL, Brown C, Timofeeva TV, Ma S, Zhou HC (2008) Hydrogen adsorption in a highly stable porous rare-earth metal-organic framework: sorption properties and neutron diffraction studies. J Am Chem Soc 130:9626鈥?627
    86. Peterson VK, Liu Y, Brown CM, Kepert CJ (2006) Neutron powder diffraction study of D2 sorption in Cu3(1,3,5-benzenetricarboxylate)2. J Am Chem Soc 128:15578鈥?5579
    87. Dinc膬 M, Dailly A, Liu Y, Brown CM, Neumann DA, Long JR (2006) Hydrogen storage in a microporous metal-organic framework with exposed Mn2+ coordination sites. J Am Chem Soc 128:16876鈥?6883
    88. Dolbecq A, Dumas E, Mayer CR, Mialane P (2010) Hybrid organic鈥搃norganic polyoxometalate compounds: from structural diversity to applications. Chem Rev 110:6009鈥?048
    89. Wei M, He C, Sun Q, Meng Q, Duan C (2007) Zeolite ionic crystals assembled through direct incorporation of polyoxometalate clusters within 3D metal-organic frameworks. Inorg Chem 46:5957鈥?966
    90. Tsang JSW, Neverov AA, Brown RS (2003) La3+-catalyzed methanolysis of hydroxypropyl- / p-nitrophenyl phosphate as a model for the RNA transesterification reaction. J Am Chem Soc 125:1559鈥?566
    91. Belousoff MJ, Ung P, Forsyth CM, Tor Y, Spiccia L, Graham B (2009) New macrocyclic terbium(III) complex for use in RNA footprinting experiments. J Am Chem Soc 131:1106鈥?114
    92. Dang D, Bai Y, He C, Wang J, Duan C, Niu J (2010) Structural and catalytic performance of a polyoxometalate-based metal-organic framework having a lanthanide nanocage as secondary building block. Inorg Chem 49:1280鈥?282
    93. Chen XY, Chen YP, Xia ZM, Hu HB, Sun YQ, Huang WY (2012) Synthesis, crystal structure of 伪-Keggin heteropolymolybdates with pyridine-2,6-dicarboxylate based frameworks, and associated RhB photocatalytic degradation and 2D-IR COS tests. Dalton Trans 41:10035鈥?0042
    94. Hiskia A, Mylonas A, Papaconstantinou E (2001) Comparison of the photoredox properties of polyoxometallates and semiconducting particles. Chem Soc Rev 30:62鈥?9
    95. Mahapatra S, Madras G, Row TNG (2007) Structural and photocatalytic activity of lanthanide (Ce, Pr, and Nd) molybdovanadates. J Phys Chem C 111:6505鈥?511
    96. Nishiyama Y, Nakagawa Y, Mizuno N (2001) High turnover numbers for the catalytic selective epoxidation of alkenes with 1聽atm of molecular oxygen. Angew Chem Int Ed 40:3639鈥?641
    97. Kovalchuk TV, Kochkin JN, Sfihi H, Zaitsev VN, Fraissard J (2009) Oniumsilica-immobilized-Keggin acids: acidity and catalytic activity for ethyl / tert-butyl ether synthesis and acetic acid esterification with ethanol. J Catal 263:247鈥?57
    98. Liu X, Jia Y, Zhang Y, Huang R (2010) Construction of a hybrid family based on lanthanide-organic frameworks hosts and polyoxometalate guests. Eur J Inorg Chem 2010:4027鈥?033
    99. Williams NH, Takasaki B, Wall M, Chin J (1999) Structure and nuclease activity of simple dinuclear metal complexes: quantitative dissection of the role of metal ions. Acc Chem Res 32:485鈥?93
    100. Weston J (2005) Mode of action of bi- and trinuclear zinc hydrolases and their synthetic analogues. Chem Rev 105:2151鈥?174
    101. Fanning AM, Plush SE, Gunnlaugsson T (2006) Tuning the properties of cyclen based lanthanide complexes for phosphodiester hydrolysis: the role of basic cofactors. Chem Commun 2006:3791鈥?793
    102. New K, Andolina CM, Morrow JR (2008) Tethered dinuclear europium(III) macrocyclic catalysts for the cleavage of RNA. J Am Chem Soc 130:14861鈥?4871
    103. Han Q, Zhang L, He C, Niu J, Duan C (2012) Metal-organic frameworks with phosphotungstate incorporated for hydrolytic cleavage of a DNA-model phosphodiester. Inorg Chem 51:5118鈥?127
    104. Oh M, Mirkin CA (2005) Chemically tailorable colloidal particles from infinite coordination polymers. Nature 438:651鈥?54
    105. Sun X, Dong SJ, Wang EK (2005) Coordination-induced formation of submicrometer-scale, monodisperse, spherical colloids of organic鈥搃norganic hybrid materials at room temperature. J Am Chem Soc 127:13102鈥?3103
    106. Lin WB, Rieter W, Taylor KML (2009) Modular synthesis of functional nanoscale coordination polymers. Angew Chem Int Ed 48:650鈥?58
    107. Spokoyny AM, Kim D, Sumrein A, Mirkin CA (2009) Infinite coordination polymer nano- and microparticle structures. Chem Soc Rev 38:1218鈥?227
    108. Sindoro M, Yanai N, Jee AY, Granick S (2014) Colloidal-sized metal-organic frameworks: synthesis and applications. Acc Chem Res 47:459鈥?69
    109. Rocca JD, Liu D, Lin WB (2011) Nanoscale metal-organic frameworks for biomedical imaging and drug delivery. Acc Chem Res 44:957鈥?68
    110. Rocca JD, Lin WB (2010) Nanoscale metal-organic frameworks: magnetic resonance imaging contrast agents and beyond. Eur J Inorg Chem 2010:3725鈥?734
    111. Nishiyabu R, Hashimoto N, Cho T, Watanabe K, Yasunaga T, Endo A, Kaneko K, Niidome T, Murata M, Adachi C, Katayama Y, Hashizume M, Kimizuka N (2009) Nanoparticles of adaptive supramolecular networks self-assembled from nucleotides and lanthanide ions. J Am Chem Soc 131:2151鈥?158
    112. Jeon YM, Armatas GS, Kim D, Kanatzidis MG, Mirkin CA (2009) Tr枚ger鈥檚-base-derived infinite co-ordination polymer microparticles. Small 5:46鈥?0
    113. Rieter WJ, Pott KM, Taylor KML, Lin WB (2008) Nanoscale coordination polymers for platinum-based anticancer drug delivery. J Am Chem Soc 130:11584鈥?1585
    114. Qiao H, Jia Y, Zheng Y, Guo N, Zhao Q, Lv W, You H (2012) Facile fabrication of Y4(1,2-BDC)6(H2O)2路5H2O: Eu3+, Tb3+ ultralong nanobelts and tunable luminescence properties. CrystEngComm 14:5830鈥?835
    115. Liu K, Zheng Y, Jia G, Yang M, Song Y, Guo N, You H (2010) Nano/micro-scaled La(1,3,5-BTC)(H2O)6 coordination polymer: facile morphology-controlled fabrication and color-tunable photoluminescence properties by co-doping Eu3+, Tb3+. J Solid State Chem 183:2309鈥?316
    116. Tang J, Alivisatos AP (2006) Crystal splitting in the growth of Bi2S3. Nano Lett 6:2701鈥?706
    117. Demars T, Boltoeva M, Vigier N, Maynadi茅 J, Ravaux J, Genre C, Meyer D (2012) From coordination polymers to doped rare-earth oxides. Eur J Inorg Chem 2012:3875鈥?884
    118. Wang F, Deng K, Wu G, Liao H, Liao H, Zhang L, Lan S, Zhang J, Song X, Wen L (2012) Facile and large-scale syntheses of nanocrystal rare earth metal-organic frameworks at room temperature and their photoluminescence properties. J Inorg Organomet Polym 22:680鈥?85
    119. Zhu YM, Zeng CH, Chu TS, Wang HM, Yang YY, Tong YX, Su CY, Wong WT (2013) A novel highly luminescent LnMOF film: a convenient sensor for Hg2+ detecting. J Mater Chem A 1:11312鈥?1319
    120. Ganguli AK, Ganguly A, Vaidya S (2010) Microemulsion-based synthesis of nanocrystalline materials. Chem Soc Rev 39:474鈥?85
    121. Sun HL, Shi H, Zhao F, Qi L, Gao S (2005) Shape-dependent magnetic properties of low-dimensional nanoscale Prussian blue (PB) analogue SmFe(CN)6路4H2O. Chem Commun 2005:4339鈥?341
    122. Rieter WJ, Taylor KML, An H, Lin W, Lin WB (2006) Nanoscale metal-organic frameworks as potential multimodal contrast enhancing agents. J Am Chem Soc 128:9024鈥?025
    123. Cadiau A, Brites CDS, Costa PMFJ, Ferreira RAS, Rocha J, Carlos LD (2013) Ratiometric nanothermometer based on an emissive Ln3+-organic framework. ACS Nano 7:7213鈥?218
    124. Foucault-Collet A, Gogick KA, White KA, Villette S, Pallier A, Collet G, Kieda C, Li T, Geib SJ, Rosi NL, Petoud S (2013) Lanthanide near infrared imaging in living cells with Yb3+ nano metal organic frameworks. Proc Natl Acad Sci U S A 110:17199鈥?7204
    125. Kathryn MLT, Jin A, Lin WB (2008) Surfactant-assisted synthesis of nanoscale gadolinium metal-organic frameworks for potential multimodal imaging. Angew Chem Int Ed 47:7722鈥?725
    126. Xu B, Wang X (2012) Solvothermal synthesis of monodisperse nanocrystals. Dalton Trans 41:4719鈥?725
    127. Shi W, Song S, Zhang HJ (2013) Hydrothermal synthetic strategies of inorganic semiconducting nanostructures. Chem Soc Rev 42:5714鈥?743
    128. Ding SB, Wang W, Qiu LG, Yuan YP, Peng FM, Jiang X, Xie AJ, Shen YH, Zhu JF (2011) Surfactant-assisted synthesis of lanthanide metal-organic framework nanorods and their fluorescence sensing of nitroaromatic explosives. Mater Lett 65:1385鈥?387
    129. Hua Q, Cao T, Gu XK, Lu J, Jiang Z, Pan X, Luo L, Li WX, Huang W (2014) Crystal-plane-controlled selectivity of Cu2O catalysts in propylene oxidation with molecular oxygen. Angew Chem Int Ed 53:4856鈥?861
    130. Li W, Zamani R, Ib谩帽ez M, Doris C, Shavel A, Morante JR, Arbiol J, Cabot A (2013) Metal ions to control the morphology of semiconductor nanoparticles: copper selenide nanocubes. J Am Chem Soc 135:4664鈥?667
    131. Liu B, Aydil ES (2009) Growth of oriented single-crystalline rutile TiO2 nanorods on transparent conducting substrates for dye-sensitized solar cells. J Am Chem Soc 131:3985鈥?990
    132. Guo H, Zhu Y, Qiu S, Lercher JA, Zhang H (2010) Coordination modulation induced synthesis of nanoscale Eu1鈭?em class="a-plus-plus">x Tb / x -metal-organic frameworks for luminescent thin films. Adv Mater 22:4190鈥?192
    133. Xu H, Rao X, Gao J, Yu J, Wang Z, Dou Z, Cui Y, Yang Y, Chen B, Qian G (2012) A luminescent nanoscale metal-organic framework with controllable morphologies for spore detection. Chem Commun 48:7377鈥?379
    134. Buller R, Peterson ML, Almarsson 脰, Leiserowitz L (2002) Quinoline binding site on malaria pigment crystal: a rational pathway for antimalarial drug design. Cryst Growth Des 2:553鈥?62
    135. Zhang X, Ballem MA, Hu ZJ, Bergman P, Uvdal K (2011) Nanoscale light-harvesting metal-organic frameworks. Angew Chem Int Ed 50:5729鈥?733
    136. Fillion H, Luche JL (1998) Synthetic organic sonochemistry. Plenum, New York
    137. Li X, Wang X, Zhang L, Lee S, Dai HJ (2008) Chemically derived, ultrasmooth graphene nanoribbon semiconductors. Science 319:1229鈥?232
    138. Suslick KS (1988) Ultrasound: its chemical, physical and biological effects. VCH, Weinheim
    139. Didenko YT, Suslick KS (2002) The energy efficiency of formation of photons, radicals and ions during single-bubble cavitation. Nature 418:394鈥?97
    140. Flannigan DJ, Suslick KS (2005) Plasma formation and temperature measurement during single-bubble cavitation. Nature 434:52鈥?5
    141. Qiu LG, Li ZQ, Wu Y, Wang W, Xu T, Jiang X (2008) Facile synthesis of nanocrystals of a microporous metal-organic framework by an ultrasonic method and selective sensing of organoamines. Chem Commun 2008:3642鈥?644
    142. Khan NA, Haque MM, Jhung SH (2010) Accelerated synthesis of porous isostructural lanthanide-benzenetricarboxylates (Ln-BTC) under ultrasound at room temperature. Eur J Inorg Chem 2010:4975鈥?981
    143. Hu SM, Niu HL, Qiu LG, Yuan YP, Jiang X, Xie AJ, Shen YH, Zhu JF (2012) Facile synthesis of highly luminescent nanowires of a terbium-based metal-organic framework by an ultrasonic-assisted method and their application as a luminescent probe for selective sensing of organoamines. Inorg Chem Commun 17:147鈥?50
    144. Xiao JD, Qiu LG, Ke F, Yuan YP, Xu GS, Wang YM, Jiang X (2013) Rapid synthesis of nanoscale terbium-based metal-organic frameworks by a combined ultrasound-vapour phase diffusion method for highly selective sensing of picric acid. J Mater Chem A 1:8745鈥?752
    145. Wang Z, Cohen SM (2009) Postsynthetic modification of metal-organic frameworks. Chem Soc Rev 38:1315鈥?329
    146. Dou Z, Yu J, Xu H, Cui Y, Yang Y, Qian G (2013) Preparation and thiols sensing of luminescent metal-organic framework films functionalized with lanthanide ions. Microporous Mesoporous Mater 179:198鈥?04
    147. Zheng YZ, Zhou GJ, Zheng ZP, Winpenny REP (2014) Molecule-based magnetic coolers. Chem Soc Rev 43:1462鈥?475
    148. Heffern MC, Matosziuk LM, Meade TJ (2014) Lanthanide probes for bioresponsive imaging. Chem Soc Rev 114:4496鈥?539
    149. Wang F, Liu X (2014) Multicolor tuning of lanthanide-doped nanoparticles by single wavelength excitation. Acc Chem Res 47:1378鈥?385
    150. Caravan P, Ellison JJ, McMurry TJ, Lauffer RB (1999) Gadolinium(III) chelates as MRI contrast agents: structure, dynamics, and applications. Chem Rev 99:2293鈥?352
    151. Kuriki K, Koike Y, Okamoto Y (2002) Plastic optical fiber lasers and amplifiers containing lanthanide complexes. Chem Rev 102:2347鈥?356
    152. Cockerill AF, Davies GLO, Harden RC, Rackham DM (1973) Lanthanide shift reagents for nuclear magnetic resonance spectroscopy. Chem Rev 73:553鈥?88
    153. Huang X, Han S, Huang W, Liu X (2013) Enhancing solar cell efficiency: the search for luminescent materials as spectral converters. Chem Soc Rev 42:173鈥?01
    154. Shibasaki M, Yoshikawa N (2002) Lanthanide complexes in multifunctional asymmetric catalysis. Chem Rev 102:2187鈥?210
    155. Habib F, Murugesu M (2013) Lessons learned from dinuclear lanthanide nano-magnets. Chem Soc Rev 42:3278鈥?288
    156. Molander GA (1992) Application of lanthanide reagents in organic synthesis. Chem Rev 92:29鈥?8
    157. Na HB, Song IC, Hyeon T (2009) Inorganic nanoparticles for MRI contrast agents. Adv Mater 21:2133鈥?148
    158. Cui CH, Yu SH (2013) Engineering interface and surface of noble metal nanoparticle nanotubes toward enhanced catalytic activity for fuel cell applications. Acc Chem Res 46:1427鈥?437
    159. Rowe MD, Chang CC, Thamm DH, Kraft SL, Harmon JF, Vogt AP, Sumerlin BS, Boyes SG (2009) Tuning the magnetic resonance imaging properties of positive contrast agent nanoparticles by surface modification with RAFT polymers. Langmuir 25:9487鈥?499
    160. Sabbatini N, Guardigli M (1993) Luminescent lanthanide complexes as photochemical supramolecular devices. Coord Chem Rev 123:201鈥?28
    161. Binnemans K (2009) Lanthanide-based luminescent hybrid materials. Chem Rev 109:4283鈥?374
    162. B眉nzli JCG (2010) Lanthanide luminescence for biomedical analysis and imaging. Chem Rev 110:2729鈥?755
    163. Brites CDS, Lima PP, Silva NJO, Mill谩n A, Amaral VS, Palacio F, Carlos LD (2012) Thermometry at the nanoscale. Nanoscale 4:4799鈥?829
    164. Jaque D, Vetrone F (2012) Luminescence nanothermometry. Nanoscale 4:4301鈥?326
    165. Cui Y, Xu H, Yue Y, Guo Z, Yu J, Chen Z, Gao J, Yang Y, Qian G, Chen B (2012) A luminescent mixed-lanthanide metal-organic framework thermometer. J Am Chem Soc 134:3979鈥?982
    166. Kim Y, Jung HY, Choe YH, Lee C, Ko SK, Koun S, Choi Y, Chung BH, Park BC, Hun TL, Shin J, Kim E (2012) High-contrast reversible fluorescence photoswitching of dye-crosslinked dendritic nanoclusters in living vertebrates. Angew Chem Int Ed 51:2878鈥?882
    167. Gao X, Cui Y, Levenson RM, Chung LWK, Nie S (2004) / In vivo cancer targeting and imaging with semiconductor quantum dots. Nat Biotechnol 22:969鈥?76
    168. Yang Q, Liu S, Liu Y, He D, Miao J, Wang X, Ji Y, Zheng Z (2014) Color tuning and white light emission via in situ doping of luminescent lanthanide metal-organic frameworks. Inorg Chem 53:289鈥?93
    169. Meyer LV, Sch枚nfeld F, M眉ller-Buschbaum K (2014) Lanthanide based tuning of luminescence in MOFs and dense frameworks 鈥?from mono- and multimetal systems to sensors and films. Chem Commun. doi:10.1039/c4cc00848k
    170. Carlos LD, Ferreira RAS, Bermudez VZ, Juli谩n-墓opez B, Escribano P (2011) Progress on lanthanide-based organic鈥搃norganic hybrid phosphors. Chem Soc Rev 40:536鈥?49
    171. Templeton DH, Dauben CH (1954) Lattice parameters of some rare earth compounds and a set of crystal radii. J Am Chem Soc 76:5237鈥?239
    172. Piatkevich KD, Subach FV, Verkhusha VV (2013) Engineering of bacterial phytochromes for near-infrared imaging, sensing, and light-control in mammals. Chem Soc Rev 42:3441鈥?452
    173. B眉nzli JCG, Piguet C (2005) Taking advantage of luminescent lanthanide ions. Chem Soc Rev 34:1048鈥?077
    174. Wj R, Taylor KML, Lin W (2007) Surface modification and functionalization of nanoscale metal-organic frameworks for controlled release and luminescence sensing. J Am Chem Soc 129:9852鈥?853
    175. Yang L, Song S, Shao C, Zhang W, Zhang H, Bu Z, Ren T (2011) Synthesis, structure and luminescent properties of 3D lanthanide (La(III), Ce(III)) coordination polymers possessing 1D nanosized cavities based on pyridine-2,6-dicarboxylic acid. Synth Met 161:1500鈥?508
    176. Foster DR, Richardson FS, Vallarino LM, Shillady D (1983) Magnetic circularly polarized luminescence spectra of Eu( / 尾-diketonate)3X2 complexes in nonaqueous solution. Inorg Chem 22:4002鈥?009
    177. Horcajada P, Gref R, Baati T, Allan PK, Maurin G, Couvreur P, F茅rey G, Morris RE, Serre C (2012) Metal-organic frameworks in biomedicine. Chem Rev 112:1232鈥?268
    178. Lorusoo G, Sharples JW, Palacios E, Roubeau O, Brechin EK, Sessoli R, Rossin A, Tuna F, Mclnnes EJL, Collison D, Evangelisti M (2013) A dense metal-organic framework for enhanced magnetic refrigeration. Adv Mater 25:4653鈥?656
    179. Filho MAM, Dutra JDL, Rocha GB, Freire RO, Simas AM (2013) Sparkle/RM1 parameters for the semiempirical quantum chemical calculation of lanthanide complexes. RSC Adv 3:16747鈥?6755
    180. Dutra JDL, Ferreira JW, Rodrigues MO, Freire RO (2013) Theoretical methodologies for calculation of Judd鈥揙felt intensity parameters of polyeuropium systems. J Phys Chem A 117:14095鈥?4099
    181. Dutra JDL, Bispo TD, Freire RO (2014) LUMPAC lanthanide luminescence software: efficient and user friendly. J Comput Chem 35:772鈥?75
    182. Chaudhuri RG, Paria S (2012) Core/shell nanoparticles: classes, properties, synthesis mechanisms, characterization, and applications. Chem Rev 112:2373鈥?433
    183. Burrows AD (2011) Mixed-component metal-organic frameworks (MC-MOFs): enhancing functionality through solid solution formation and surface modifications. CrystEngComm 13:3623鈥?642
    184. Li T, Sullivan JE, Rosi NL (2013) Design and preparation of a core鈥搒hell metal-organic framework for selective CO2 capture. J Am Chem Soc 135:9984鈥?987
    185. Zhao M, Deng K, He L, Liu Y, Li G, Zhao H, Tang Z (2014) Core鈥搒hell palladium nanoparticle@metal-organic frameworks as multifunctional catalysts for cascade reactions. J Am Chem Soc 136:1738鈥?741
    186. Guo J, Yang W, Wang C (2013) Magnetic colloidal supraparticles: design, fabrication and biomedical applications. Adv Mater 25:5196鈥?214
    187. Nakagawa Y, Kageyama H, Oaki Y, Imai H (2014) Direction control of oriented self-assembly for 1D, 2D, and 3D microarrays of anisotropic rectangular nanoblocks. J Am Chem Soc 136:3716鈥?719
    188. Zhang SY, Regulacio MD, Han MY (2014) Self-assembly of colloidal one-dimensional nanocrystals. Chem Soc Rev 43:2301鈥?323
    189. Mart铆n-Rodr铆guez R, Geitenbeek R, Meijerink A (2013) Incorporation and luminescence of Yb3+ in CdSe nanocrystals. J Am Chem Soc 135:13668鈥?3671
    190. Luo F, Yang YT, Che YX, Zheng JM (2008) Construction of Cu(II)-Gd(III) metal-organic framework by the introduction of a small amino acid molecule: hydrothermal synthesis, structure, thermostability, and magnetic studies. CrystEngComm 10:1613鈥?616
    191. Fabelo O, Ca帽adillas-Delgado L, Pas谩n J, D铆az-Gallifa P, Labrador A, Ruiz-P茅rez C (2012) Dryness sensitive porous 3d-4f metal-organic framework with unusual dynamic behavior. CrystEngComm 14:765鈥?67
    192. Hu XL, Sun CY, Qin C, Wang XL, Wang HN, Zhou EL, Li WE, Su ZM (2013) Iodine-templated assembly of unprecedented 3d-4f metal-organic frameworks as photocatalysts for hydrogen generation. Chem Commun 49:3564鈥?566
    193. Park YK, Choi SB, Kim H, Kim K, Won BH, Choi K, Choi JS, Ahn WS, Won N, Kim S, Jung DH, Choi SH, Kim GH, Cha SS, Jhon YH, Yang JK, Kim J (2007) Crystal structure and guest uptake of a mesoporous metal-organic framework containing cages of 3.9 and 4.7聽nm in diameter. Angew Chem Int Ed 46:8230鈥?233
  • 作者单位:Zhonghao Zhang (3)
    Zhiping Zheng (3)

    3. Department of Chemistry and Biochemistry, University of Arizona, Tucson, AZ, 85721, USA
  • 丛书名:Lanthanide Metal-Organic Frameworks
  • ISBN:978-3-662-45773-3
  • 刊物类别:Chemistry and Materials Science
  • 刊物主题:Chemistry
    Inorganic Chemistry
  • 出版者:Springer Berlin / Heidelberg
  • ISSN:1616-8550
文摘
The research on metal-organic framework (MOF) compounds has developed rapidly, stimulated by not only their aesthetically pleasing structures but also diverse chemical and materials applications. The use of lanthanide-containing building blocks adds several features that are unique, fundamentally interesting, and practically significant to the construction of MOFs, due largely to the traits originated from the unique f-electronic configuration of these elements; these include primarily ionic metal-ligand interactions and flexible coordination geometry, line-like luminescence, and interesting magnetic properties associated with the exclusively high-spin configuration. Nanostructured Ln-MOFs featuring nanosized pores and channels offer even more attractive applications since when compared with their sub-nanosized analogs, a greater variety of guest species may be accommodated, either for storage or separation of guests of energy and environmental significance, sensing, or catalysis. On the other hand, reducing the physical size of MOFs to nanoscale imparts properties distinctly different from those of their bulk counterparts. Nanoparticles of Ln-MOFs have been shown to possess unique luminescence and magnetic properties for applications in optical and magnetic imaging as well as for drug delivery. This chapter provides an up-to-date review of the work on both nanostructured and nanoscale Ln-MOFs and ends with some personal perspectives regarding what future directions the research is heading toward.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700