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微波在化工过程中的研究及应用进展
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  • 英文篇名:Progress in research and application of microwave in chemical process
  • 作者:曾昭文 ; 郑成 ; 毛桃嫣 ; 魏渊 ; 肖润辉 ; 彭思玉
  • 英文作者:ZENG Zhaowen;ZHENG Cheng;MAO Taoyan;WEI Yuan;XIAO Runhui;PENG Siyu;Institute of Fine Chemical Engineering, Guangzhou University;Guangzhou Vocational College of Science and Technology;
  • 关键词:微波化工应用 ; 微波热效应 ; 非热效应 ; 化学反应 ; 分离 ; 合成
  • 英文关键词:microwave chemical application;;microwave thermal effects;;non-thermal effects;;chemical reaction;;separation;;synthesis
  • 中文刊名:HGSZ
  • 英文刊名:CIESC Journal
  • 机构:广州大学精细化工研究所;广州科技职业技术学院;
  • 出版日期:2019-03-15
  • 出版单位:化工学报
  • 年:2019
  • 期:v.70
  • 基金:国家自然科学基金项目(21878058);; 广州大学研究生创新研究资助计划项目(2018GDJC-M12)
  • 语种:中文;
  • 页:HGSZ2019S1001
  • 页数:14
  • CN:S1
  • ISSN:11-1946/TQ
  • 分类号:7-20
摘要
与传统加热过程比较,微波辅助有机合成的优势在于加快反应速率、提高产率和改变化学选择性。研究者们将这种常规加热无法重现的现象称为非热效应,但关于非热效应的存在性一直争论不休,至今微波促进合成反应的作用机理尚不清楚。总结了微波技术在有机合成和化工分离过程的应用进展,综述了近年来国内外对微波热效应与非热效应的研究进展,阐述了微波效应的实例分析以及理论观点,同时,对微波在工业化过程的发展进行了分析与展望。
        Compared with the conventional heating method, microwave-assisted organic syntheses takes the advantages of speeding up the reaction rate, increasing the product yields and changing the selectivity. These phenomena, which cannot be reproduced by conventional heating method, are named microwave nonthermal effects by researchers. But debates about whether nonthermal effects exist or not have continued until now. Up to now, the mechanism of microwave-promoting synthetic reactions is unclear. In this paper, the application progress of microwave technology in organic synthesis and chemical separation process was summarized. The research progress of microwave thermal effect and non-thermal effect in recent years was reviewed. The case analysis and theoretical viewpoint of microwave effect were expounded, and the development of microwave-assisted industrialization was analyzed and prospected.
引文
[1] Ao W, Fu J, Mao X, et al. Microwave assisted preparation of activated carbon from biomass:a review[J]. Renewable and Sustainable Energy Reviews, 2018, 92:958-979.
    [2]魏渊,郑成,毛桃嫣,等.山嵛酸双酯基有机硅季铵盐的微波合成工艺及性能[J].化工进展, 2018, 37(8):3169-3178.Wei Y, Zheng C, Mao T Y, et al. Microwave synthesis process and properties of behenic acid diester-based silicone quaternary ammonium salt[J]. Chemical Industry and Engineering Progress,2018, 37(8):3169-3178.
    [3]凌慧,郑成,毛桃嫣,等.响应面法优化微波辅助合成中碳链甘油三酯工艺[J].化工学报, 2016, 67(S2):231-244.Ling H, Zheng C, Mao T Y, et al. Optimization of microwaveassisted synthesis of medium-chain triacylglycerols using response surface methodology[J]. CIESC Journal, 2016, 67(S2):231-244.
    [4] Hillman F, Zimmerman J M, Paek S M, et al. Rapid microwaveassisted synthesis of hybrid zeolitic-imidazolate frameworks with mixed metals and mixed linkers[J]. Journal of Materials Chemistry A, 2017, 5(13):6090-6099.
    [5] Xin Z C, Li L, Zhang X L, et al. Microwave-assisted hydrothermal synthesis of chrysanthemum-like Ag/ZnO prismatic nanorods and their photocatalytic properties with multiple modes for dye degradation and hydrogen production[J]. RSC Adv., 2018, 8(11):6027-6038.
    [6] Makhado E, Pandey S, Ramontja J. Microwave assisted synthesis of xanthan gum-cl-poly(acrylic acid)based-reduced graphene oxide hydrogel composite for adsorption of methylene blue and methyl violet from aqueous solution[J]. Int. J. Biol. Macromol.,2018, 119:255-269.
    [7] Liu S Y, Mei L F, Liang X L, et al. Anchoring Fe3O4nanoparticles on carbon nanotubes for microwave-induced catalytic degradation of antibiotics[J]. ACS Appl. Mater. Interfaces, 2018, 10(35):29467-29475.
    [8] Chen W M, Zhang A P, Gu Z P, et al. Enhanced degradation of refractory organics in concentrated landfill leachate by Fe0/H2O2coupled with microwave irradiation[J]. Chem. Eng. J., 2018, 354:680-691.
    [9] Gedye R, Smith F, Westaway K, et al. The use of microwaveovens for rapid organic-synthesis[J]. Tetrahedron Lett., 1986, 27(3):279-282.
    [10] De Bruyn M, Budarin V L, Sturm G S J, et al. Subtle microwaveinduced overheating effects in an industrial demethylation reaction and their direct use in the development of an innovative microwave reactor[J]. J. Am. Chem. Soc., 2017, 139(15):5431-5436.
    [11]徐运欢,郑成,林璟,等.全氟烃基季铵盐的微波合成[J].精细化工, 2014, 31(3):326-331.Xu Y H, Zheng C, Lin J, et al. Microwave synthesis of a perfluoroalkyl-containing quaternary ammonium salt[J]. Fine Chemicals, 2014, 31(3):326-331.
    [12]丁寒卫,薛永强,崔子祥,等.一种多头基有机硅季铵盐的合成及其性能[J].化工进展, 2014, 33(2):479-482.Ding H W, Xue Y Q, Cui Z X, et al. Synthesis and properties of a kind of organosilicon quaternary ammonium salt with multi-heads in its molecular structure[J]. Chemical Industry and Engineering Progress, 2014, 33(2):479-482.
    [13] Dange P N, Rathod V K. Equilibrium and thermodynamic parameters for heterogeneous esterification of butyric acid with methanol under microwave irradiation[J]. Resource-Efficient Technologies, 2017, 3(1):64-70.
    [14] Hasan Z, Jun J W, Jhung S H. Sulfonic acid-functionalized MIL-101(Cr):an efficient catalyst for esterification of oleic acid and vapor-phase dehydration of butanol[J]. Chem. Eng. J., 2015, 278:265-271.
    [15] Ning Y, Niu S. Preparation and catalytic performance in esterification of a bamboo-based heterogeneous acid catalyst with microwave assistance[J]. Energy Convers. Manage., 2017, 153:446-454.
    [16] Lieu T, Yusup S, Moniruzzaman M. Kinetic study on microwaveassisted esterification of free fatty acids derived from Ceiba pentandra seed oil[J]. Bioresour. Technol., 2016, 211:248-256.
    [17] Kong P S, Aroua M K, Daud W M A W, et al. Enhanced microwave catalytic-esterification of industrial grade glycerol over Br?nsted-based methane sulfonic acid in production of biolubricant[J]. Process Saf. Environ. Prot., 2016, 104:323-333.
    [18] Ma L L, Lv E M, Du L X, et al. Statistical modeling/optimization and process intensification of microwave-assisted acidified oil esterification[J]. Energy Convers. Manage., 2016, 122:411-418.
    [19] Jermolovicius L A, Cantagesso L C M, do Nascimento R B, et al.Microwave fast-tracking biodiesel production[J]. Chem. Eng.Process., 2017, 122:380-388.
    [20] Li X, Cao J, Bai X P, et al. Chemical composition and thermal properties of Tilapia oil extracted by different methods[J]. Int. J.Food Prop., 2018, 21(1):1575-1585.
    [21] Teh Y Y, Lee K T, Chen W H, et al. Dilute sulfuric acid hydrolysis of red macroalgae Eucheuma denticulatum with microwave-assisted heating for biochar production and sugar recovery[J]. Bioresour. Technol., 2017, 246:20-27.
    [22] Fan J, Santomauro F, Budarin V L, et al. The additive free microwave hydrolysis of lignocellulosic biomass for fermentation to high value products[J]. J. Cleaner Prod., 2018, 198:776-784.
    [23] Lin Y C, Shangdiar S, Chen S C, et al. Microwave irradiation with dilute acid hydrolysis applied to enhance the saccharification rate of water hyacinth(Eichhornia crassipes)[J]. Renewable Energy,2018, 125:511-517.
    [24] Tsubaki S, Oono K, Ueda T, et al. Microwave-assisted hydrolysis of polysaccharides over polyoxometalate clusters[J]. Bioresour.Technol., 2013, 144:67-73.
    [25] Chen J Y, Ding S Y, Ji Y M, et al. Microwave-enhanced hydrolysis of poultry feather to produce amino acid[J]. Chem. Eng.Process., 2015, 87:104-109.
    [26] Lee Y S, Phang L Y, Ahmad S A, et al. Microwave-alkali treatment of chicken feathers for protein hydrolysate production[J]. Waste and Biomass Valorization, 2016, 7(5):1147-1157.
    [27] Wang S, Yang Z, Peng N, et al. Optimization of ionic liquidsbased microwave-assisted hydrolysis of puerarin and daidzein derivatives from Radix Puerariae Lobatae extract[J]. Food Chemistry, 2018, 256:149-155.
    [28] Romano P N, De Almeida J M A R, Carvalho Y, et al. Microwaveassisted selective hydrogenation of furfural to furfuryl alcohol employing a green and noble metal-free copper catalyst[J].Chemsuschem, 2016, 9(24):3387-3392.
    [29] Sánchez-Rodríguez E P, Fragoso-Medina A J, Ramírez-Meneses E, et al.[N,P]-pyrrole-phosphine ligand:an efficient and robust ligand for Ru-catalyzed transfer hydrogenation microwaveassisted reactions[J]. Catal. Commun., 2018, 115:49-54.
    [30] Keenan C S, Murphree S S. Rapid and convenient conversion of nitroarenes to anilines under microwave conditions using nonprecious metals in mildly acidic medium[J]. Synth. Commun.,2017, 47(11):1085-1089.
    [31] Datta K J, Rathi A K, Kumar P, et al. Synthesis of flower-like magnetite nanoassembly:application in the efficient reduction of nitroarenes[J]. Scientific Reports, 2017, 7:11585.
    [32] Peyrot C, Vives T, Legentil L, et al. Microwave-assisted reduction of nitroarenes by aminothiophenol/dithiotreitol[J].Chemistryselect, 2017, 2(18):5214-5217.
    [33] Tussing S, Paradies J. Microwave-assisted FLP-catalyzed hydrogenations[J]. Dalton Trans., 2016, 45(14):6124-6128.
    [34] Voiry D, Yang J, Kupferberg J, et al. High-quality graphene via microwave reduction of solution-exfoliated graphene oxide[J].Science, 2016, 353(6306):1413-1416.
    [35] Chaban V V, Prezhdo O V. Microwave reduction of graphene oxide rationalized by reactive molecular dynamics[J]. Nanoscale,2017, 9(11):4024-4033.
    [36] Kokel A, Schafer C, Torok B. Application of microwave-assisted heterogeneous catalysis in sustainable synthesis design[J]. Green Chemistry, 2017, 19(16):3729-3751.
    [37] Martins N M R, Pombeiro A J L, Martins L M D R S. A green methodology for the selective catalytic oxidation of styrene by magnetic metal-transition ferrite nanoparticles[J]. Catal.Commun., 2018, 116:10-15.
    [38] Ribeiro A P C, Martins L M D R S, Carabineiro S A C, et al.Heterogenized C-scorpionate iron(Ⅱ)complex on nanostructured carbon materials as recyclable catalysts for microwave-assisted oxidation reactions[J]. Chemcatchem, 2018, 10(8):1821-1828.
    [39] Hamzehlouia S, Shabanian J, Latifi M, et al. Effect of microwave heating on the performance of catalytic oxidation of n-butane in a gas-solid fluidized bed reactor[J]. Chem. Eng. Sci., 2018, 192:1177-1188.
    [40] Pujol M D, Navarro L. Oxidation of aldehydes and alcohols to carboxylic acids using NaClO under microwave irradiation or classical heating without a catalyst[J]. Lett. Org. Chem., 2018, 15(6):534-539.
    [41] Maurya M R, Saini N, Avecilla F. Liquid phase versus microwave assisted selective oxidation of volatile organic compounds involving dioxidomolybdenum(Ⅵ)and oxidoperoxidomolybdenum(Ⅵ)complexes as catalysts in the presence/absence of an Nbased additive[J]. Polyhedron, 2015, 90:221-232.
    [42] Mangin F, Prinsen P, Yepez A, et al. Microwave assisted benzyl alcohol oxidation using iron particles on furfuryl alcohol derived supports[J]. Catal. Commun., 2018, 104:67-70.
    [43] Caporaso M, Cravotto G, Georgakopoulos S, et al. Pd/C-catalyzed aerobic oxidative esterification of alcohols and aldehydes:a highly efficient microwave-assisted green protocol[J]. Beilstein J. Org.Chem., 2014, 10:1454-1461.
    [44] Handayani S, Budimarwanti C, Haryadi W. Microwave-assisted organicreactions:eco-friendlysynthesisof dibenzylidenecyclohexanone derivatives via crossed aldol condensation[J]. Indones. J. Chem., 2017, 17(2):336-341.
    [45] Handayani S, Budimarwanti C, Haryadi W. Novel synthesis of substituted benzylidenecyclohexanone by microwave assisted organic synthesis[C]//International Conference on Chemistry,Chemical Process and Engineering(IC3PE). Indonesia:Yogyakarta, 2017.
    [46] Zhang A R, Xiao H Y, Peng C C, et al. Microwave-assisted synthesis of novel julolidinyl-based nonlinear optical chromophores with enhanced electro-optic activity[J]. RSC Adv.,2014, 4(110):65088-65097.
    [47]於祥,陈娅芳.微波辅助合成5-芳亚甲基-2,3-二苯基噻唑-4-酮类衍生物[J].化学通报, 2018, 81(7):657-659.Yu X, Chen Y F. Microwave-assisted synthesis of 5-arylienne-2,3-diphenylthiazolidin-4-one derivatives[J]. Chemistry, 2018, 81(7):657-659.
    [48] Moreno L M, Quiroga J, Abonia R, et al. Synthesis of new 1,3,5-triazine-based 2-pyrazolines as potential anticancer agents[J].Molecules, 2018, 23(8):1956.
    [49] Upadhyay S, Tripathi A, Paliwal S, et al. Facile one-pot synthesis methodology for nitrogen-containing heterocyclic derivatives of 3,5-disubstituted 4, 5-dihydro-1h-pyrazole, their biological evaluation and molecular docking studies[J]. Pharm. Chem. J.,2017, 51(7):564-575.
    [50]李洪,崔俊杰,李鑫钢,等.微波场强化化工分离过程研究进展[J].化工进展, 2016, 35(12):3735-3745.Li H, Cui J J, Li X G, et al. Recent developments in microwaveassisted chemical separation processes[J]. Chemical Industry and Engineering Progress, 2016, 35(12):3735-3745.
    [51] Dahmoune F, Nayak B, Moussi K, et al. Optimization of microwave-assisted extraction of polyphenols from Myrtus communis L. leaves[J]. Food Chemistry, 2015, 166:585-595.
    [52] Ekezie F G C, Sun D W, Cheng J H. Acceleration of microwaveassisted extraction processes of food components by integrating technologies and applying emerging solvents:a review of latest developments[J]. Trends Food Sci. Technol., 2017, 67:160-172.
    [53] Abedi A S, Rismanchi M, Shahdoostkhany M, et al. Microwaveassisted extraction of Nigella sativa L. essential oil and evaluation of its antioxidant activity[J]. Journal of Food Science and Technology-Mysore, 2017, 54(12):3779-3790.
    [54] Tongkham N, Juntasalay B, Lasunon P, et al. Dragon fruit peel pectin:microwave-assisted extraction and fuzzy assessment[J].Agriculture and Natural Resources, 2017, 51(4):262-267.
    [55] Hosseini S S, Khodaiyan F, Yarmand M S. Optimization of microwave assisted extraction of pectin from sour orange peel and its physicochemical properties[J]. Carbohydr. Polym., 2016, 140:59-65.
    [56] Keisandokht S, Haddad N, Gariepy Y, et al. Screening the microwave-assisted extraction of hydrocolloids from Ocimum basilicum L. seeds as a novel extraction technique compared with conventional heating-stirring extraction[J]. Food Hydrocolloids,2018, 74:11-22.
    [57] Olalere O A, Abdurahman N H, Alara O R, et al. Parametric optimization of microwave reflux extraction of spice oleoresin from whitepepper(Piper nigrum)[J].J.Anal.Sci.Technol.,2017,8(1):8.
    [58] Albuquerque B R, Prieto M A, Barreiro M F, et al. Catechinbased extract optimization obtained from Arbutus unedo L. fruits using maceration/microwave/ultrasound extraction techniques[J].Ind. Crops Prod., 2017, 95:404-415.
    [59] Xu J K, Hou H J, Hu J P, et al. Optimized microwave extraction,characterization and antioxidant capacity of biological polysaccharides from Eucommia ulmoides oliver leaf[J]. Scientific Reports, 2018, 8:6561.
    [60] Kovacevic D B, Maras M, Barba F J, et al. Innovative technologies for the recovery of phytochemicals from Stevia rebaudiana Bertoni leaves:a review[J]. Food Chemistry, 2018, 268:513-521.
    [61] Putnik P, Kovacevic D B, Penic M, et al. Microwave-assisted extraction(MAE)of dalmatian sage leaves for the optimal yield of polyphenols:HPLC-DAD identification and quantification[J].Food Analytical Methods, 2016, 9(8):2385-2394.
    [62] Lefsih K, Giacomazza D, Dahmoune F, et al. Pectin from Opuntia ficus indica:optimization of microwave-assisted extraction and preliminarycharacterization[J].FoodChemistry,2017,221:91-99.
    [63] Nigar H, Garcia-Ba?os B, Pe?aranda-Foix F L, et al. Aminefunctionalized mesoporous silica:a material capable of CO2adsorption and fast regeneration by microwave heating[J]. AIChE Journal, 2016, 62(2):547-555.
    [64] Du C F, Xue Y T, Wu Z S, et al. Microwave-assisted one-step preparation of macadamia nut shell-based activated carbon for efficient adsorption of Reactive Blue[J]. New J. Chem., 2017, 41(24):15373-15383.
    [65] Wang L, Yan W, He C, et al. Microwave-assisted preparation of nitrogen-doped biochars by ammonium acetate activation for adsorption of acid red 18[J]. Appl. Surf. Sci., 2018, 433:222-231.
    [66] Li Y, Tsend N, Li T, et al. Microwave assisted hydrothermal preparation of rice straw hydrochars for adsorption of organics and heavy metals[J]. Bioresour. Technol., 2019, 273:136-143.
    [67] Feng Z X, Odelius K, Rajarao G K, et al. Microwave carbonized cellulose for trace pharmaceutical adsorption[J]. Chem. Eng. J.,2018, 346:557-566.
    [68] Huang A S, Wan L L, Caro J. Microwave-assisted synthesis of well-shaped UiO-66-NH2with high CO2adsorption capacity[J].Mater. Res. Bull., 2018, 98:308-313.
    [69] Peres E C, Slaviero J C, Cunha A M, et al. Microwave synthesis of silica nanoparticles and its application for methylene blue adsorption[J]. J. Environ. Chem. Eng., 2018, 6(1):649-659.
    [70] Deng S, Zhang G S, Liang S, et al. Microwave assisted preparation of thio-functionalized polyacrylonitrile fiber for the selective and enhanced adsorption of mercury and cadmium from water[J]. ACS Sustainable Chem. Eng., 2017, 5(7):6054-6063.
    [71] Pan R R, Fan F L, Li Y, et al. Microwave regeneration of phenolloaded activated carbons obtained from Arundo donax and waste fiberboard[J]. RSC Adv., 2016, 6(39):32960-32966.
    [72] Shariaty P, Lashaki M J, Hashisho Z, et al. Effect of ETS-10 ion exchange on its dielectric properties and adsorption/microwave regeneration[J]. Sep. Purif. Technol., 2017, 179:420-427.
    [73] Foo K Y. Effect of microwave regeneration on the textural network, surface chemistry and adsorptive property of the agricultural waste based activated carbons[J]. Process Saf.Environ. Prot., 2018, 116:461-467.
    [74] Ge X Y, Wu Z L, Cravotto G, et al. Cork wastewater purification in a cooperative flocculation/adsorption process with microwaveregenerated activated carbon[J]. J. Hazard. Mater., 2018, 360:412-419.
    [75] Wang Z J, Ma X T, Wei J P, et al. Microwave irradiations effect on promoting coalbed methane desorption and analysis of desorption kinetics[J]. Fuel, 2018, 222:56-63.
    [76] Czechowski J, Majchrowicz I. Microwave and conventional treatment of low-cement high-alumina castables with different water to cement ratios(Ⅰ):Drying[J]. Ceram. Int., 2018, 44(1):65-70.
    [77] Zielinska M, Sadowski P, Blaszczak W. Combined hot air convective drying and microwave-vacuum drying of blueberries(Vaccinium corymbosum L.):drying kinetics and quality characteristics[J]. Drying Technol., 2016, 34(6):665-684.
    [78] Song Z L, Jing C M, Yao L S, et al. Coal slime hot air/microwave combined drying characteristics and energy analysis[J]. Fuel Process. Technol., 2017, 156:491-499.
    [79] Wang W D, Xin F W, Tu Y N, et al. Pore structure development in Xilingol lignite under microwave irradiation[J]. J. Energy Inst.,2018, 91(1):75-86.
    [80] Zielinska M, Ropelewska E, Markowski M. Thermophysical properties of raw, hot-air and microwave-vacuum dried cranberry fruits(Vaccinium macrocarpon)[J]. LWT-Food Science and Technology, 2017, 85:204-211.
    [81] Zhao Y T, Jiang Y J, Zheng B D, et al. Influence of microwave vacuum drying on glass transition temperature, gelatinization temperature, physical and chemical qualities of lotus seeds[J].Food Chemistry, 2017, 228:167-176.
    [82] Monteiro R L, Link J V, Tribuzi G, et al. Microwave vacuum drying and multi-flash drying of pumpkin slices[J]. J. Food Eng.,2018, 232:1-10.
    [83] Monteiro R L, Link J V, Tribuzi G, et al. Effect of multi-flash drying and microwave vacuum drying on the microstructure and texture of pumpkin slices[J]. LWT-Food Science and Technology,2018, 96:612-619.
    [84] Kipcak A S. Microwave drying kinetics of mussels(Mytilus edulis)[J]. Res. Chem. Intermed., 2017, 43(3):1429-1445.
    [85] Chahbani A, Fakhfakh N, Balti M A, et al. Microwave drying effects on drying kinetics, bioactive compounds and antioxidant activity of green peas(Pisum sativum L.)[J]. Food Biosci., 2018,25:32-38.
    [86] Surendhar A, Sivasubramanian V, Vidhyeswari D, et al. Energy and exergy analysis, drying kinetics, modeling and quality parameters of microwave-dried turmeric slices[J]. J. Therm. Anal.Calorim., 2018, 10.1007/s10973-018-7791-9.
    [87] Al-Ali M, Periasamy S, Parthasarathy R. Novel drying of formulated naproxen sodium using microwave radiation:characterization and energy comparison[J]. Powder Technol.,2018, 334:143-150.
    [88] Li Y H, Qi Y R, Wu Z F, et al. Comparative study of microwavevacuum and vacuum drying on the drying characteristics,dissolution, physicochemical properties, and antioxidant capacity of Scutellaria extract powder[J]. Powder Technol., 2017, 317:430-437.
    [89] Kim H S, Kim J H. Kinetics and thermodynamics of microwaveassisted drying of paclitaxel for removal of residual methylene chloride[J]. Process Biochem., 2017, 56:163-170.
    [90] Mingos D M P, Baghurst D R. Tilden Lecture. Applications of microwave dielectric heating effects to synthetic problems in chemistry[J]. Cheminform, 1991, 22(36):301-301.
    [91]张力冉.微波合成聚羧酸超塑化剂性能/热-非热效应研究[D].北京:中国矿业大学(北京), 2015.Zhang L R. Study on the performance/thermal-athermal effect of microwave synthesis of polycarboxylic ether superplasticizer[D].Beijing:China University of Mining&Technology(Beijing), 2015.
    [92]李昕皓.微波加速有机反应的本质研究[D].北京:北京化工大学, 2016.Li X H. Origin of the acceleration of organic reactions under microwave irradiation[D]. Beijing:Beijing University of Chemical Technology, 2016.
    [93] Kappe C O, Pieber B, Dallinger D. Microwave effects in organic synthesis:myth or reality?[J]. Angew. Chem., Int. Ed., 2013, 52(4):1088-1094.
    [94]徐文涛.微波催化转化NO及微波效应的研究[D].湘潭:湘潭大学, 2016.Xu W T. Study on microwave catalytic conversion of nitric oxide and microwave effects[D]. Xiangtan:Xiangtan University, 2016.
    [95] Prieto P, de la Hoz A, Díaz-Ortiz A, et al. Understanding MAOS through computational chemistry[J]. Chem. Soc. Rev., 2017, 46(2):431-451.
    [96] Borges I, Silva A M, Modesto-Costa L. Microwave effects on NiMoS and CoMoS single-sheet catalysts[J]. J. Mol. Model., 2018,24(6):128.
    [97] Cabello G, Davoglio R A, Cuadrado L G. The role of small nanoparticles on the formation of hot spots under microwaveassisted hydrothermal heating[J]. Inorganic Chemistry, 2018, 57(12):7252-7258.
    [98] Ferrari A, Hunt J, Stiegman A, et al. Microwave-assisted superheating and/or microwave-specific superboiling(nucleationlimited boiling)of liquids occurs under certain conditions but is mitigated by stirring[J]. Molecules, 2015, 20(12):21672-21680.
    [99] Asakuma Y, Matsumura S, Saptoro A. In-situ observation of nanoparticle formation under different power of microwave irradiation[J]. Cryst. Res. Technol., 2017, 52(9):1700108.
    [100] Asakuma Y, Matsumura S, Saptoro A. Method for suppressing superheating behavior during microwave assisted nanoparticle formation by ethylene glycol addition[J]. Chemical Engineering and Processing-Process Intensification, 2018, 132:11-15.
    [101] Yang Z Y, Yi H H, Tang X L, et al. Potential demonstrations of“hot spots”presence by adsorption-desorption of toluene vapor onto granular activated carbon under microwave radiation[J].Chem. Eng. J., 2017, 319:191-199.
    [102] Wang W L, Wang B, Sun J, et al. Numerical simulation of hotspot effects in microwave heating due to the existence of strong microwave-absorbing media[J]. RSC Adv., 2016, 6(58):52974-52981.
    [103]房奎圳,张力冉,王栋民,等.微波有机合成及在混凝土减水剂制备中的应用研究进展[J].化工进展, 2018, 37(4):1575-1583.Fang K Z, Zhang L R, Wang D M, et al. Microwave organic synthesis and its application in concrete water-reducing agent[J].Chemical Industry and Engineering Progress, 2018, 37(4):1575-1583.
    [104] Gutmann B, Schwan A M, Reichart B, et al. Activation and deactivation of a chemical transformation by an electromagnetic field:evidence for specific microwave effects in the formation of grignard reagents[J]. Angew. Chem., Int. Ed., 2011, 50(33):7636-7640.
    [105] Luo H, Bao L W, Wang H, et al. Microwave-assisted in-situ elimination of primary tars over biochar:low temperature behaviours and mechanistic insights[J]. Bioresour. Technol., 2018,267:333-340.
    [106] Horikoshi S, Osawa A, Abe M, et al. On the generation of hotspots by microwave electric and magnetic fields and their impact on a microwave-assisted heterogeneous reaction in the presence of metallic Pd nanoparticles on an activated carbon support[J]. J.Phys. Chem. C, 2011, 115(46):23030-23035.
    [107] Horikoshi S, Kamata M, Mitani T, et al. Control of microwavegenerated hot spots. 6. generation of hot spots in dispersed catalyst particulates and factors that affect catalyzed organic syntheses in heterogeneous media[J]. Ind. Eng. Chem. Res., 2014,53(39):14941-14947.
    [108] Li X, Xu J. Determination on temperature gradient of different polar reactants in reaction mixture under microwave irradiation with molecular probe[J]. Tetrahedron, 2016, 72(35):5515-5520.
    [109] Khalife A, Pathak U, Richert R. Heating liquid dielectrics by time dependent fields[J]. Eur. Phys. J. B, 2011, 83(4):429-435.
    [110] Huang W, Richert R. Dynamics of glass-forming liquids():Microwave heating in slow motion[J]. J. Chem. Phys., 2009, 130(19):194509.
    [111] Huang W, Richert R. The physics of heating by time-dependent fields:microwaves and water revisited[J]. J. Phys. Chem. B, 2008,112(32):9909-9913.
    [112] Horikoshi S, Kamata M, Sumi T, et al. Selective heating of Pd/AC catalyst in heterogeneous systems for the microwave-assisted continuous hydrogen evolution from organic hydrides:temperature distribution in the fixed-bed reactor[J]. Int. J. Hydrogen Energy,2016, 41(28):12029-12037.
    [113] Rosana M R, Hunt J, Ferrari A, et al. Microwave-specific acceleration of a Friedel-Crafts reaction:evidence for selective heating in homogeneous solution[J]. J. Org. Chem., 2014, 79(16):7437-7450.
    [114] Dallinger D, Irfan M, Suljanovic A, et al. An investigation of wall effects in microwave-assisted ring-closing metathesis and cyclotrimerization reactions[J]. J. Org. Chem., 2010, 75(15):5278-5288.
    [115] Chen C C, Reddy P M, Devi C S, et al. Study of microwave effects on the lipase-catalyzed hydrolysis[J]. Enzyme Microb. Technol.,2016, 82:164-172.
    [116] Kappe C O. Unraveling the mysteries of microwave chemistry using silicon carbide reactor technology[J]. Acc. Chem. Res.,2013, 46(7):1579-1587.
    [117] Horikoshi S, Watanabe T, Narita A, et al. The electromagnetic wave energy effect(s)in microwave-assisted organic syntheses(MAOS)[J]. Scientific Reports, 2018, 8:5151.
    [118] Dudley G B, Richert R, Stiegman A E. On the existence of and mechanism for microwave-specific reaction rate enhancement[J].Chemical Science, 2015, 6(4):2144-2152.
    [119]王陆瑶,孟东,李璐.“热效应”或“非热效应”——微波加热反应机理探讨[J].化学通报, 2013, 76(8):698-703.Wang L Y, Meng D, Li L. Thermal or nonthermal microwave effects——the mechanism of microwave heating[J]. Chemistry,2013, 76(8):698-703.
    [120] Dudley G B, Stiegman A E. Changing perspectives on the strategic use of microwave heating in organic synthesis[J]. Chem. Rec.,2018, 18(3):381-389.
    [121] Hu Y N, He Y Z, Cheng H F. Microwave-induced degradation of N-nitrosodimethylamine(NDMA)sorbed in zeolites:effect of mineral surface chemistry and non-thermal effect of microwave[J].J. Cleaner Prod., 2018, 174:1224-1233.
    [122] Nushiro K, Kikuchi S, Yamada T. Extraordinary microwave effect on atropo-enantioselective catalytic reduction of biaryl lactones[J]. Chem. Lett., 2013, 42(2):165-167.
    [123] Tashima S, Nushiro K, Saito K, et al. Microwave specific effect on catalytic atropo-enantioselective ring-opening reaction of biaryl lactones[J]. Bull. Chem. Soc. Jpn., 2016, 89(7):833-835.
    [124] Nushiro K, Kikuchi S, Yamada T. Microwave effect on catalytic enantioselective Claisen rearrangement[J]. Chem. Commun.,2013, 49(75):8371-8373.
    [125] Horikoshi S, Watanabe T, Kamata M, et al. Microwave-assisted organic syntheses:microwave effect on intramolecular reactions—the Claisen rearrangement of allylphenyl ether and 1-allyloxy-4-methoxybenzene[J].RSC Adv.,2015,5(110):90272-90280.
    [126] Kapranov S V, Kouzaev G A. Effects of microwave electric fields on the translational diffusion of dipolar molecules in surface potential:a simulation study[J]. Surface Science, 2018, 667:66-78.
    [127] Kishimoto F, Imai T, Fujii S, et al. Microwave-enhanced photocatalysis on CdS quantum dots—evidence of acceleration of photoinduced electron transfer[J]. Scientific Reports, 2015, 5:11308
    [128] Nishimoto Y, Yazawa S, Kiyokawa K, et al. Effect of functional groups in organic chlorides on radical reduction with hydrostannane under microwave irradiation[J]. Chem. Lett., 2017,46(8):1116-1118.
    [129] Zhai C K, Teng N, Pan B H, et al. Revealing the importance of non-thermal effect to strengthen hydrolysis of cellulose by synchronous cooling assisted microwave driving[J]. Carbohydr.Polym., 2018, 197:414-421.
    [130] Horikoshi S, Serpone N. On the influence of the microwaves thermal and non-thermal effects in titania photoassisted reactions[J]. Catal. Today, 2014, 224:225-235.
    [131] Zhou M, Cheng K, Sun H R, et al. Investigation of nonlinear output-input microwave power of DMSO-ethanol mixture by molecular dynamics simulation[J]. Scientific Reports, 2018, 8:7186.
    [132] Zheng J L, Tolvanen P, Taouk B, et al. Synthesis of carbonated vegetable oils:investigation of microwave effect in a pressurized continuous-flow recycle batch reactor[J]. Chem. Eng. Res. Des.,2018, 132:9-18.
    [133] Le T, Ju S, Koppala S, et al. Kinetics study of microwave enhanced reactions between diasporic bauxite and alkali solution[J]. J. Alloys Compd., 2018, 749:652-663.
    [134]郑成,毛桃嫣,卫云路,等.沸腾状态下十二烷基甲基二羟乙基溴化铵微波合成的动力学研究[J].精细化工, 2009, 26(2):131-135.Zheng C, Mao T Y, Wei Y L, et al. Study on the kinetics of the synthesis of dodecyl methyl dihydroxyethyl ammonium bromide[J].Fine Chemicals, 2009, 26(2):131-135.
    [135] Rosana M R, Tao Y C, Stiegman A E, et al. On the rational design of microwave-actuated organic reactions[J]. Chemical Science,2012, 3(4):1240-1244.
    [136] Dudley G B, Stiegman A E, Rosana M R. Correspondence on microwave effects in organic synthesis[J]. Angew. Chem., Int. Ed.,2013, 52(31):7918-7923.
    [137] Kappe C O. Reply to the correspondence on microwave effects in organic synthesis[J]. Angew. Chem., Int. Ed., 2013, 52(31):7924-7928.
    [138] Ano T, Kishimoto F, Sasaki R, et al. In situ temperature measurements of reaction spaces under microwave irradiation using photoluminescent probes[J]. Phys. Chem. Chem. Phys.,2016, 18(19):13173-13179.
    [139]郑成,林晓涛,魏渊,等.季铵盐表面活性剂微波合成放大工艺研究[J].广州大学学报(自然科学版), 2018, 17(1):40-46.Zheng C, Lin X T, Wei Y, et al. Study on the pilot synthesis of quaternary ammonium salt microwave[J]. Journal of Guangzhou University(Natural Science Edition), 2018, 17(1):40-46.

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