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参考文献

[1]Guo L T,Cai Y Y,Ge J M,et al.Multifunctional Au-Co@CN Nanocatalyst for Highly Efficient Hydrolysis of Ammonia Borane[J].ACS Catalysis,2015,5(2):388-92.

[2]Wan L,Chen J,Tan Y,et al.Ammonia Borane Destabilized by Aluminium Hydride:a Mutual Enhancement for Hydrogen Release[J].International Journal of Hydrogen Energy,2015,40(2):1047-1053.

[3]Jiang H-L,Xu Q.Catalytic Hydrolysis of Ammonia Borane For Chemical Hydrogen Storage[J].Catalysis Today,2011,170(1):56-63.

[4] 贾同国, 王银山, 李志伟.氢能源发展研究现状[J].节能技术,2011,29(3):264-267.

[5]Wen M,Sun B,Zhou B,et al.Controllable Assembly of Ag/C/Ni Magnetic Nanocables and its Low Activation Energy Dehydrogenation Catalysis[J].Journal of Materials Chemistry,2012,22(24):11988-11993.

[6]Hu C,Xiao Y,Zhao Y,et al.Highly Nitrogen-Doped Carbon Capsules:Scalable Preparation and High-Performance Applications in Fuel Cells and Lithium Ion Batteries[J].Nanoscale,2013,5(7):2726-2733.

[7]Hoang V V,Ganguli D.Amorphous Nanoparticles-Experiments and Computer Simulations[J].Physics Reports,2012,518(3):81-140.

[8]Khetkorn W,Rastogi R P,Incharoensakdi A,et al.Microalgal Hydrogen Production:a Review [J].Bioresource Technology,2017 (243):1194-1206.

[9]Wakisaka M,Mitsui S,Hirose Y,et al.Electronic Structures of Pt-Co and PtıRu Alloys for co-Tolerant Anode Catalysts in Polymer Electrolyte Fuel Cells Studied by E CıXPS[J].The Journal of Physical Chemistry B,2006,110(46):23489-23496.

[10]Clik D,Yildiz M.Investigation of Hydrogen Production Methods in Accordance with Green Chemistry Principles[J].International Journal of Hydrogen Energy,2017,42(36):23395-23401.

[11]Fujishima A,Rao T N,Tryk D A.TiO 2 Photocatalysts and Diamond Electrodes[J].Electrochimica Acta,2000,45(28):4683-4690.

[12]Badea G,Naghiu G S,Giurca I,et al.Hydrogen Production Using Solar Energy-Technical Analysis[J].Energy Procedia,2017,112(2):418-425.

[13]Wei T Y,Lim K L,Tseng Y S,et al.A Review on the Characterization of Hydrogen in Hydrogen Storage Materials[J].Renewable and Sustainable Energy Reviews,2017,79(1):1122-1133.

[14]Pang Y,Li Q.A Review on Kinetic Models and Corresponding Analysis Methods for Hydrogen Storage Materials[J].International Journal of Hydrogen Energy,2016,41(40):18072-18087.

[15]Sadhasivam T,Kim H T,Jung S,et al.Dimensional Effects of Nanostructured Mg/Mg H 2 for Hydrogen Storage Applications:a Review[J].Renewable and Sustainable Energy Reviews,2017,72(1):523-534.

[16]Eom K,Cho E,Kwon H.Feasibility of on-board Hydrogen Production from Hydrolysis of Al-Fe Alloy for Pemfcs[J].International Journal of Hydrogen Energy,2011,36(19):12338-12342.

[17]Liu Y,Wang X,Dong Z,et al.Hydrogen Generation from the Hydrolysis of Mg Powder Ball-Milled with AlCl3[J].Energy,2013,53(1):147-152.

[18]Ouyang L Z,Xu Y J,Dong H W,et al.Production of Hydrogen via Hydrolysis of Hydrides in Mg-La System[J].International Journal of Hydrogen Energy,2009,34(24):9671-9676.

[19]Si T Z,Han L,Li Y T,et al.Achieving Highly Efficient Hydrogen Generation and Uniform Ag Nanoparticle Preparation via Hydrolysis of Mg9 Ag Alloy Milled under Hydrogen Gas[J].International Journal of Hydrogen Energy,2014,39(23):11867-11872.

[20]Wang S,Sun L X,Xu F,et al.Hydrolysis Reaction of Ball-Milled Mg-Metal Chlorides Composite for Hydrogen Generation for Fuel Cells[J].International Journal of Hydrogen Energy,2012,37(8):6771-6775.

[21]Zou H,Chen S,Zhao Z,et al.Hydrogen Production by Hydrolysis of Aluminum[J].Journal of Alloys and Compounds,2013,578(1):380-384.

[22]Turova N Y,Karpovskaya M I,Novoselova A V,et al.Hydrolysis and Alcoholysis of Alkali Metal Aluminium Hydrides[J].Inorganica Chimica Acta,1977,21(1):157-161.

[23]Fan M Q,Xu F,Sun L X,et al.Hydrolysis of Ball Milling Al-Bi-Hydride and Al-Bi-Salt Mixture for Hydrogen Generation[J].Journal of Alloys and Compounds,2008,60(1):125-129.

[24]Haertling C,Hanrahan R J,Smith R.A Literature Review of Reactions and Kinetics of Lithium Hydride Hydrolysis[J].Journal of Nuclear Materials,2006,349(1):195-233.

[25]Huang M,Ouyang L,Wang H,et al.Hydrogen Generation by Hydrolysis of Mg H 2 and Enhanced Kinetics Performance of Ammonium Chloride Introducing[J].International Journal of Hydrogen Energy,2015,40(18):6145-6150.

[26]Xiao Y,Wu C,Wu H,et al.Hydrogen Generation by Ca H 2-Induced Hydrolysis of Mg17 Al12 Hydride[J].International Journal of Hydrogen Energy,2011,36(24):15698-15703.

[27]Chen W,Ouyang L Z,Liu J W,et al.Hydrolysis and Regeneration of Sodium Borohydride (NaBH 4)-a Combination of Hydrogen Production and Storage[J].Journal of Power Sources,2017,359(1):400-407.

[28]Fan M Q,Wang Y,Tang R,et al.Hydrogen Generation from Al/NaBH 4 Hydrolysis Promoted by Co Nanoparticles and Na Al O2 Solution[J].Renewable Energy,2013,60(1):637-642.

[29]Ma M,Ouyang L,Liu J,et al.Air-Stable Hydrogen Generation Materials and Enhanced Hydrolysis Performance of Mg H 2-LiNH 2 Composites[J].Journal of Power Sources,2017,359(1):427-434.

[30]Chou C C,Lee D J,Chen B H.Hydrogen Production from Hydrolysis of Ammonia Borane with Limited Water Supply[J].International Journal of Hydrogen Energy,2012,37(20):15681-15690.

[31]Mao Y,Chen J,Wang H,et al.Catalyst Screening:Refinement of the Origin of the Volcano Curve and its Implication in Heterogeneous Catalysis[J].Chinese Journal of Catalysis,2015,36(9):1596-1605.

[32]Dixon D A,Gutowski M.Thermodynamic Properties of Molecular Borane Amines and the [BH 4-][NH 4+]Salt for Chemical Hydrogen Storage Systems from ABinitio Electronic Structure Theory[J].The Journal of Physical Chemistry A,2005,109(23):5129-5135.

[33]Geanangel R A,Wendlandt W W.A TG-DSC Study of the Thermal Dissociation of(NH 2 BH 2)x [J].Thermochimica Acta,1985,86(1):375-378.

[34]Baumann J,Baitalow F,Wolf G.Thermal Decomposition of Polymeric Aminoborane (H 2 BNH 2)x under Hydrogen Release[J].Thermochimica Acta,2005,430(1):9-14.

[35]Stowe A C,Shaw W J,Linehan J C,et al.In Situ Solid State 11 B MASNMR Studies of the Thermal Decomposition of Ammonia Borane:Mechanistic Studies of the Hydrogen Release Pathways from a Solid State Hydrogen Storage Material[J].Physical Chemistry Chemical Physics,2007,9(15):1831-1836.

[36]Jaska C A,Manners I.Heterogeneous or Homogeneous Catalysis Mechanistic Studies of the Rhodium-Catalyzed Dehydrocoupling of Amine-Borane and Phosphine-Borane Adducts[J].Journal of the American Chemical Society,2004,126(31):9776-9785.

[37]Bluhm M E,Bradley M G,Butterick R,et al.Amineborane-Based Chemical Hydrogen Storage:Enhanced Ammonia Borane Dehydrogenation in Ionic Liquids[J].Journal of the American Chemical Society,2006,128(24):7748-7749.

[38]Himmelberger D W,Alden L R,Bluhm M E,et al.Ammonia Borane Hydrogen Release in Ionic Liquids[J].Inorganic Chemistry,2009,48(20):9883-9889.

[39]Gutowska A,Li L,Shin Y,et al.Nanoscaffold Mediates Hydrogen Release and the Reactivity of Ammonia Borane[J].Angewandte Chemie International Edition,2005,44(23):3578-3582.

[40]Li Z,Zhu G,Lu G,et al.Ammonia Borane Confined by a Metal-Organic Framework for Chemical Hydrogen Storage:Enhancing Kinetics and Eliminating Ammonia[J].Journal of the American Chemical Society,2010,132(5):1490-1491.

[41]Diyabalanage H V K,Nakagawa T,Shrestha R P,et al.Potassium(I)Amidotrihydroborate:Structure and Hydrogen Release[J].Journal of the American Chemical Society,2010,132(34):11836-11837.

[42]Xiong Z,Yong C,Wu G,et al.High-Capacity Hydrogen Storage in Lithium and Sodium Amidoboranes[J].Nature Materials,2008,7(2):138-141.

[43]Yang J,Cheng F,Liang J,et al.Hydrogen Generation by Hydrolysis of Ammonia Borane with a Nanoporous Cobalt-Tungsten-Boron-Phosphorus Catalyst Supported on Ni Foam[J].International Journal of Hydrogen Energy,2011,36(2):1411-1417.

[44]Xu Q,Chandra M.Catalytic Activities of Non-Noble Metals for Hydrogen Generation from Aqueous Ammonia-Borane at Room Temperature[J].Journal of Power Sources,2006,163(1):364-370.

[45]Parsons R.The Rate of Electrolytic Hydrogen Evolution and the Heat of Adsorption of Hydrogen[J].Transactions of the Faraday Society,1958(54):1603-1611.

[46]Yang X,Cheng F,Liang J,et al.Pt x Ni1-x Nanoparticles as Catalysts for Hydrogen Generation from Hydrolysis of Ammonia Borane[J].International Journal of Hydrogen Energy,2009,34(21):8785-8791.

[47]Jaska C A,Temple K,Lough A J,et al.Transition Metal-Catalyzed Formation of Boron-Nitrogen Bonds:Catalytic Dehydrocoupling of Amine-Borane Adducts to Form Aminoboranes and Borazines[J].Journal of the American Chemical Society,2003,125(31):9424-9434.

[48]Clark T J,Russell C A,Manners I.Homogeneous,Titanocene-Catalyzed Dehydrocoupling of Amine-Borane Adducts[J].Journal of the American Chemical Society,2006,128(30):9582-9583.

[49]Chandra M,Xu Q.A High-Performance Hydrogen Generation System:Transition Metal-Catalyzed Dissociation and Hydrolysis of Ammonia-Borane[J].Journal of Power Sources,2006,156(2):190-194.

[50] 赫格达斯.催化剂设计-进展与展望[M].北京: 烃加工出版社,1989:135-190.

[51] 邓景发.催化作用原理导论[M].长春: 吉林科学技术出版社,1981:231-255.

[52]Anderson J R.Structrue of Matallic Catalysts[M].New York:Academic Press,1975:432-490.

[53]Mott N F,Jones H.The Theory of the Properties of Metals and Alloys[M].London:Oxford University Press,1936:198-223.

[54]Gates B C,Katzer J R,Schuit G C A.Chemistry of Catalytic Processes[M].New York:McGraw-Hill Book Company,1979:531-567.

[55]Chin Y H,Wang Y,Dagle R A,et al.Methanol Steam Reforming over Pd/Zn O:Catalyst Preparation and Pretreatment Studies[J].Fuel Processing Technology,2003,83(1-3):193-201.

[56]Li B,Kado S,Mukainakano Y,et al.Surface Modification of Ni Catalysts with Trace Pt for Oxidative Steam Reforming of Methane[J].Journal of Catalysis,2007,245(1):144-155.

[57]Zhang J,Chen C,Yan W,et al.Ni Nanoparticles Supported On CNTs with Excellent Activity Produced by A tomic Layer Deposition for Hydrogen Generation from the Hydrolysis of Ammonia Borane[J].Catalysis Science图示Technology,2016,6(7):2112-2119.

[58]Umegaki T,Takei C,Xu Q,et al.Fabrication of Hollow Metal Oxide-Nickel Composite Spheres and Their Catalytic Activity for Hydrolytic Dehydrogenation of Ammonia Borane[J].International Journal of Hydrogen Energy,2013,38(3):1397-1404.

[59]Umegaki T,Seki A,Xu Q,et al.Influence of Preparation Conditions of Hollow Silica-Nickel Composite Spheres on Their Catalytic Activity for Hydrolytic Dehydrogenation of Ammonia Borane[J].Journal of Alloys and Compounds,2014,588(1):615-621.

[60]Umegaki T,Xu Q,Kojima Y.In Situ Synthesized Spherical Nickel-Silica Composite Particles for Hydrolytic Dehydrogenation of Ammonia Borane[J].Journal of Alloys and Compounds,2013,580(1):S313-S316.

[61]Umegaki T,Ohashi T,Xu Q,et al.Influence of Preparation Conditions of Hollow Titania-Nickel Composite Spheres on their Catalytic Activity for Hydrolytic Dehydrogenation of Ammonia Borane[J].Materials Research Bulletin,2014,52(1):117-121.

[62]Karim A,Conant T,Datye A.The Role of PdZn Alloy Formation and Particle Size on the Selectivity for Steam Reforming of Methanol[J].Journal of Catalysis,2006,243(2):420-427.

[63]Regalboto J R.Catalyst Prepareration:Science and Engineering[M].Boca Raton:CRC Press,2007:593-624.

[64]Yang Y,Zhang F,Wang H,et al.Catalytic Hydrolysis of Ammonia Borane by Cobalt Nickel Nanoparticles Supported on Reduced Graphene Oxide for Hydrogen Generation[J].Journal of Nanomaterials,2014,2014(1):9-15.

[65]Meng X,Li S,Xia B,et al.Decoration of Graphene with Tetrametallic Cu@FeCo Ni Core-Shell Nanoparticles for Catalytic Hydrolysis of Amine Boranes[J].RSC Advances,2014,4(62):32817-32825.

[66]Halevi B,Peterson E J,DeLaRiva A,et al.Aerosol-Derived Bimetallic Alloy Powders:Bridging the Gap[J].The Journal of Physical Chemistry C,2010,114(40):17181-17190.

[67]Conley B L,Guess D,Williams T J.A Robust,Air-Stable,Reusable Ruthenium Catalyst for Dehydrogenation of Ammonia Borane[J].Journal of the American Chemical Society,2011,133(36):14212-14215.

[68]Ke Dandan,Li Yuan,Wang Jin,Zhang Lu,Wang Jidong,Zhao Xin,Han Shumin.Hydrolytic Dehydrogenation of Ammonia Borane Catalyzed by Poly(Amidoamine)Dendrimers-Modified Reduced Graphene Oxide Nanosheets Supported Ag0.3Co0.7 Nanoparticles[J].Journal of Materials Science图示Technology,2018,34(12):2350-2358.

[69]Cao C Y,Chen C Q,Li W,et al.Nanoporous Nickel Spheres as Highly Active Catalyst for Hydrogen Generation from Ammonia Borane[J].ChemSusChem,2010,3(11):1241-1244.

[70]Simagina V I,Komova O V,Ozerova A M,et al.Cobalt Oxide Catalyst for Hydrolysis of Sodium Borohydride and Ammonia Borane[J].Applied Catalysis A:General,2011,394(1-2):86-92.

[71]Bulut A,Yurderi M,Ertas I E,et al.Carbon Dispersed Copper-Cobalt Alloy Nanoparticles:a Cost-Effective Heterogeneous Catalyst with Exceptional Performance in the Hydrolytic Dehydrogenation of Ammonia-Borane[J].Applied Catalysis B:Environmental,2016,180(1):121-129.

[72]Patel N,Fernandes R,Gupta S,et al.Co-B Catalyst Supported over Mesoporous Silica for Hydrogen Production by Catalytic Hydrolysis of Ammonia Borane:a Study on Influence of Pore Structure[J].Applied Catalysis B:Environmental,2013,140-141(1):125-132.

[73]Umegaki T,Yan J M,Zhang X B,et al.Boron-and Nitrogen-based Chemical Hydrogen Storage Materials[J].International Journal of Hydrogen Energy,2009,34(5):2303-2311.

[74]Zhao Xin,Ke Dandan,Han Shumin,Li Yuan,Zhang Hongming,Cai Ying;Reduced Graphene Oxide Sheets Supported Waxberry-like Co Catalysts for Improved Hydrolytic Dehydrogenation of Ammonia Borane[J].ChemistrySelect 2019,4(9),2513-2518.

[75]Fernandes R,Patel N,Paris A,et al.Improved H 2 Production Rate by Hydrolysis of Ammonia Borane using Quaternary Alloy Catalysts[J].International Journal of Hydrogen Energy,2013,38(8):3313-3322.

[76]Wang S,Zhang D,Ma Y,et al.Aqueous Solution Synthesis of Pt-M(M=Fe,Co,Ni)Bimetallic Nanoparticles and Their Catalysis for the Hydrolytic Dehydrogenation of Ammonia Borane[J].ACS Applied Materials图示Interfaces,2014,6(15):12429-12435.

[77]Metin O,Mazumder V,Ozkar S,et al.Monodisperse Nickel Nanoparticles and their Catalysis in Hydrolytic Dehydrogenation of Ammonia Borane[J].Journal of the American Chemical Society,2010,132(5):1468-1469.

[78]Singh A K,Xu Q.Synergistic Catalysis over Bimetallic Alloy Nanoparticles[J].ChemCatChem,2013,5(3):652-676.

[79]Zhao Xin,Ke Dandan,Han Shumin,Li Yuan,Zhang Hongming,Cai Ying.Surfactant PVA-Stabilized Co-Mo Nanocatalyst Supported by Graphene Oxide Sheets Toward the Hydrolytic Dehydrogenation of Ammonia Borane[J].NANO,2019,14,1950137-1-10.

[80]Yao Q,Lu Z H,Zhang Z,et al.One-pot Synthesis of Core-Shell Cu@SiO2 Nanospheres and their Catalysis for Hydrolytic Dehydrogenation of Ammonia Borane and Hydrazine Borane[J].Scientific Reports,2014,4(1):549-552.

[81]Cheng F,Ma H,Li Y,et al.Ni1-x Pt x( x=0-0.12)Hollow Spheres as Catalysts for Hydrogen Generation from Ammonia Borane[J].Inorganic Chemistry,2007,46(3):788-794.

[82]Yang W,Ma X,Xu X,et al.Sulfur-Doped Porous Carbon as Metal-Free Counter Electrode for High-Efficiency Dye-Sensitized Solar Cells[J].Journal of Power Sources,2015(282):228-234.

[83]Zhou D,Cui Y,Xiao P W,et al.A General and Scalable Synthesis Approach to Porous Graphene[J].Nature Communications,2014,5(1):4716-4722.

[84]Yan J,Liao J,Li H,et al.Magnetic Field Induced Synthesis of Amorphous CoB Alloy Nanowires as a Highly Active Catalyst for Hydrogen Generation from Ammonia Borane[J].Catalysis Communications,2016,84(1):124-128.

[85]Jiang H L,Akita T,Xu Q.A One-Pot Protocol for Synthesis of Non-Noble Metal-Based Core-Shell Nanoparticles under Ambient Conditions:toward Highly Active and Cost-Effective Catalysts for Hydrolytic Dehydrogenation of NH 3 BH 3[J].Chemical communications (Cambridge,England),2011,47(39):10999-11001.

[86]F T,ME G,Y Z,et al.Reaction-Driven Restructuring of Rh-Pd and Pt-Pd Core-Shell Nanoparticles[J].Science,2008,322(5903):932-934.

[87]Alayoglu S,Nilekar A U,Mavrikakis M,et al.Ru-Pt core-Shell Nanoparticles for Preferential Oxidation of Carbon Monoxide in Hydrogen[J].Nature Matererials,2008,7(4):333-338.

[88]Wei W,Wang Z,Xu J,et al.Cobalt Hollow Nanospheres:Controlled Synthesis,Modification and Highly Catalytic Performance for Hydrolysis of Ammonia Borane[J].Science Bulletin,2017,62(5):326-331.

[89]Wang L,Zhu L P,Bing N C,et al.Facile Green Synthesis of Pd/NDoped Carbon Nanotubes Catalysts and their Application in Heck Reaction and Oxidation of Benzyl Alcohol[J].Journal of Physics and Chemistry of Solids,2017,107(1):125-130.

[90]Fujii T,Kiribayashi H,Saida T,et al.Low Temperature Growth of Single-Walled Carbon Nanotubes from Ru Catalysts by Alcohol Catalytic Chemical Vapor Deposition[J].Diamond and Related Materials,2017,77(1):97-101.

[91]Ke Dandan,Li Yuan,Wang Jin,Zhang Lu,Wang Jidong,Zhao Xin,Han Shumin.Fabrication of Pt-Co NPs Supported on Nanoporous Graphene as High-Efficient Catalyst for Hydrolytic Dehydrogenation of Ammonia Borane[J].International Journal of Hydrogen Energy,2017(42):26617-26625.(https://www.daowen.com)

[92]Li X,Li P,Pan X,et al.Deactivation Mechanism and Regeneration of Carbon Nanocomposite Catalyst for Acetylene Hydrochlorination[J].Applied Catalysis B:Environmental,2017(210):116-120.

[93]Zhou X,Chen Z,Yan D,et al.Deposition of Fe-Ni Nanoparticles on Polyethyleneimine-Decorated Graphene Oxide and Application in Catalytic Dehydrogenation of Ammonia Borane[J].Journal of Materials Chemistry,2012,22(27):13506-13516.

[94]Yan J M,Zhang X B,Han S,et al.Magnetically Recyclable Fe-Ni Alloy Catalyzed Dehydrogenation of Ammonia Borane in Aqueous Solution Uunder Ambient Atmosphere[J].Journal of Power Sources,2009,194(1):478-481.

[95]Demirci U B,Miele P.Cobalt-Based Catalysts for the Hydrolysis of NaBH 4 and NH 3 BH 3[J].Physical Chemistry Chemical Physics,2014,16(15):6872-6885.

[96]Liu J,Zhang A,Liu M,et al.Fe-MOF-Derived Highly Active Catalysts for Carbon Dioxide Hydrogenation to Valuable Hydrocarbons[J].Journal of CO2 Utilization,2017,21(1):100-107.

[97]Ping D,Dong X,Zang Y,et al.Highly Efficient MOF-Templated Ni Catalyst towards CO Selective Methanation in Hydrogen-Rich Reformate Gases[J].International Journal of Hydrogen Energy,2017,42(23):15551-15556.

[98]Zhao Y,Liang Y,Zhao X,et al.Cu O-Co O-Mn O/SiO 2 Nanocomposite Aerogels as Catalysts Carrier and Effect of Process Factors on the Synthesis of Diphenyl Carbonate[J].Procedia Engineering,2012,27(1):1454-1461.

[99]Agorreta E,Salvador M,Santamaria J,et al.Simultaneous Activation and Deactivation Phenomena in Isopropyl Alcohol Dehydrogenation on a Cu/SiO2 Catalyst[J].Studies in Surface Science and Catalysis,1991,68(1):391-398.

[100]Guo Q,Ren L.Hydrodechlorination of Trichloroethylene over MoP/γ-Al2 O3 Catalyst with High Surface Area[J].Catalysis Today,2016,264(1):158-162.

[101]Dimas-Rivera G L,Rivera De la Rosa J,Lucio-Ortiz C J,et al.Bimetallic Pd-Fe Supported onγ-Al2 O3 Catalyst used in the Ring Opening of 2-Methylfuran to Selective Formation of Alcohols[J].Applied Catalysis A:General,2017,543(1):133-140.

[102]Zhang L,Cui S,Guo H,et al.The Poisoning Effect of Potassium Ions Doped on Mn O x/TiO2 Catalysts for Low-Temperature Selective Catalytic Reduction[J].Applied Surface Science,2015,355(1):1116-1122.

[103]Zayadi R A,Bakar F A.Comparative Study on the Performance of Au/F-TiO2 Photocatalyst Synthesized from Zamzam Water and Distilled Water under Blue Light Irradiation[J].Journal of Photochemistry and Photobiology A:Chemistry,2017,346(1):338-350.

[104]Xu S,Zhang L,Xiao K,et al.Isomerization of Glucose into Fructose by Environmentally Friendly Fe/βZeolite Catalysts[J].Carbohydrate Research,2017,446(1):48-51.

[105]Graça I,Iruretagoyena D,Chadwick D.Glucose Isomerisation into Fructose over Magnesium-Impregnated Nay Zeolite Catalysts[J].Applied Catalysis B:Environmental,2017,206(1):434-443.

[106]Wang Jin,Ke Dandan,Li Yuan,Zhang Hongmin,Wang Chunxiao,Zhao Xin,Yuan Yongjie,Han Shumin.Efficient Hydrolysis of Alkaline Sodium Borohydride Catalyzed by Cobalt Nanoparticles Supported on Three-Dimensional Graphene Oxide[J].Materials Research Bulletin,2017(95):204-210.

[107]Huang Y,Huang H,Liu Y,et al.Facile Synthesis of Poly(Amidoamine)-Modified Carbon Nanospheres Supported Pt Nanoparticles for Direct Methanol Fuel Cells[J].Journal of Power Sources,2012,201(1):81-87.

[108]Pan M,Kong L,Liu B,et al.Production of Multi-Walled Carbon Nanotube/Poly(Aminoamide)Dendrimer Hybrid and its Application to Piezoelectric Immunosensing for Metolcarb[J].Sensors and Actuators B:Chemical,2013,188(1):949-956.

[109]Yao Q,Lu ZH,Huang W,et al.High Pt-like Activity of the Ni-Mo/Graphene Catalyst for Hydrogen Evolution from Hydrolysis of Ammonia Borane[J].Journal of Materials Chemistry A,2016,4(22):8579-8583.

[110]Zhao Xin,Han Shumin,Zhu Xilin,Liu Baozhong,Liu Yanqing.Investigations on Hydrogen Storage Properties of Mg2 Ni+x wt.%La Mg2 Ni(x=0,10,20,30)Composites[J].Journal of Solid State Chemistry,2012(190):68-72.

[111] 王艳辉, 吴迪镛, 迟建.氢能及制氢的应用技术现状及发展趋势[J].化工进展,2001,20(1):6-8.

[112]Ji Liqiang,Zhao Xin,Ke Dandan.Infuence of Annealing Time on Electrochemical Hydrogen Storage Properties of La0.5 Nd0.05 Sm0.3 Mg0.15 Ni3.5 Alloys[J].SN Applied Sciences,2019(1):27.

[113]Lu Z W,Sun S,Li G R,et al.Electrochemical Hydrogen Storage of Ball-milled Mg-rich Mg-Nd Alloy with Ni Powders[J].Journal of Alloys and Compounds,2007(433):269-273.

[114]Zhao Xin,Han Shumin,Zhu Yi,Chen Xiaocui,Ke Dandan,Wang Zhibin,Liu Ting,Ma Yufei.Investigation on Hydrogenation Performance of Mg2 Ni+10 wt.%Nb N Composite[J].Journal of Solid State Chemistry,2015(221):441-444.

[115]Zhang Y H,Shang H W,Yuan Z M,et al.Hydrogen Storage Thermodynamic and Dynamic Properties of as-milled Ce-Mg-Ni-based Ce Mg12-type Alloys[J].International Journal of Hydrogen Energy,2019(44):19275-19284.

[116]Zhao Xin,Ke Dandan,Cai Ying,Hu Feng,Liu Jingjing,Zhang Lu,Han Shumin.A Novel Synthesis Method of La-Mg-Ni-based Superlatticeby LaNi5 Absorbing Gas-state Mg[J].ChemistrySelect,2019,4(9),8165-8170.

[117]Ouyang L Z,Yao L,Yang X S,et al.The Effects of Co and Ni Addition on the Hydrogen Storage Properties of Mg3 Mm[J].International Journal of Hydrogen Energy,2010(35):8275-8280.

[118]Gao X P,Lu Z W,Wang Y,et al.Electrochemical Hydrogen Storage of Nanocrystalline La2 Mg17 Alloy Ball-milled with Ni Powders[J].Electrochem Solid-State Lett,2004(7):A102-A104.

[119]Lu Z W,Sun S,Li G R,et al.Electrochemical Hydrogen Storage of Ball-milled Mg-rich Mg-Nd alloy with Ni Powders[J].Journal of Alloys and Compounds,2007,433:269-273.

[120]Wang Y,Qiao S Z,Wang X.Electrochemical Hydrogen Storage Properties of the Ball-milled Pr Mg12-x Ni x+150 wt%Ni(x=1,2)Composites[J].International Journal of Hydrogen Energy,2008(33):5066-5072.

[121]Y H Zhang,B W Li,H P Ren,et al.An Investigation on Hydrogen Storage Thermodynamics and Kinetics of Nd-Mg-Ni-based Alloys Synthesized by Mechanical Milling[J].International Journal of Hydrogen Energy,2016,41(28):12205-12213.

[122] 胡锋, 罗丽容, 李永治, 等.铸态及快淬态Ce Mg10 Ni2 合金电化学储氢热力学及动力学性能研究[J].电化学,2019,24(1):14-17.

[123] 罗丽容, 蔡颖, 胡锋.铸态及快淬态CeMg11 Ni合金电化学及其动力学性能[J].储能科学与技术,2019,8(5):904-910.

[124]M Abdellaoui,S Mokbli,G Cuevas,et al.Structural and Electrochemical Properties of Amorphous Rich Mg x Ni100-x Nano-material Obtained by Mechanical Alloying[J].Journal of Alloys图示Compounds,2003(356-357):557-561.

[125]F Hu,Y H Zhang,Y Zhang,et al.Thermodynamics and Electrochemical Hydrogen Storage Properties of Ball Milling Ce Mg12+100%Ni Alloys[J].Journal of Functional Materials,2012,43(17):2319-2322.

[126]S Orimo,H Fujii.Materials Science of Mg-Ni-based New Hydrides[J].Journal of Applied Physics,2001(72):167-186.

[127]Y H Zhang,B W Li,H P Ren,et al.Investigation on Structures and Electrochemical Performances of the As-cast and Quenched La0.7 Mg0.3 Co0.45 Ni2.55-x Fe x(x=0-0.4)Electrode Alloys[J].International Journal of Hydrogen Energy,2007(32):4627-4634.

[128]Feng Hu,Lirong Luo,Xin Zhao,et al.Investigation of the Microstructure and the Thermodynamic and Kinetic Properties of Ball-milled CeMg12-type Composite Materials as Hydrogen Storage Materials[J].Materials Characterization,2019(156):109824.

[129]Y H Zhang,K LÜ,D L Zhao,et al.Electrochemical Hydrogen Storage Characteristics of Nanocrystalline and Amorphous Mg2 Ni-type Alloys Prepared by Melt-spinning.Trans[J].Nonferrous Met.Soc.China,2011(21):502-511.

[130]F Hu,Y H Zhang,Y Zhang,et al.Effect of Ball Milling Time on Microstructure and Electrochemical Properties of Ce Mg12+100%Ni Hydrogen Storage Alloy[J].Materials Science and Technology,2013,29(1):121-128.

[131]M H Li,Y F Zhu,C Yang,et al.Enhanced Electrochemical Hydrogen Storage Properties of Mg2 Ni H 4 by C oating with Nano-nickel[J].International Journal of Hydrogen Energy,2015(40):13949-13956.

[132]V Paul-Boncour,A Percheron-Guegan,M Diaf,et al.Structural Characterization of RNi2(R=La,Ce)Intermetallic Compounds and Their Hydrides[J].Less Common Metals,1987(131):201-208.

[133]C P Hou,M S Zhao,J Li,et al.Enthalpy Change(ΔH 0)and Entropy Change(ΔS 0)Measurement of Ce Mn1-x Al1-x Ni2x( x=0.00,0.25,0.50 and 0.75)Hydrides by Electrochemical P-C-T Curve[J].Hydrogen Energy,2008,33(14):3762-3766.

[134]Feng Hu,Lirong Luo,Ying Cai,et al.Investigation of Microstructure and Electrochemical Hydrogen Storage Thermodynamic and Kinetic Properties of Ball-milled Ce Mg12-type Composite Materials[J].Materials and Design,2019(182):108034.

[135]Y H Cho,S Aminorroaya,H K Liu,et al.The Affect of Transition Metals on Hydrogen Migration and Catalysis in Cast Mg-Ni Alloys[J].Hydrogen Energy,2011(36):4984-4992.

[136]C D Yim,B S You,Y S Na,et al.Hydriding Properties of Mg-x Ni Alloys with Different Microstructures[J].Catalysis Today,2007(120):276-280.

[137]Sakintuna B,Lamari-Darkim F,Hirscher M.Metal Hydride Materials for Solid Hydrogen Storage:A Review[J].Hydrogen Energy,2007,32(9):1121-1140.

[138]M H Li,Y F Zhu,C Yang,et al.Enhanced Electrochemical Hydrogen Storageproperties of Mg2 Ni H 4 by Coating with Nano-nickel[J].Hydrogen Energy,2015(40):13949-13956.

[139]D L Zhu,J G Zhang,Y F Zhu,et al.Electrochemical Hydrogen Storage Properties of Mg100-x Ni x Produced Byhydriding Combustion Synthesis and Mechanical Milling[J].Progress in Natural Science:Materials International,2017(27):144-148.

[140]Y H Zhang,Z M Yuan,T Yang,et al.Highly Improved Electrochemical Performancesof the Nanocrystalline and Amorphous Mg2 Ni-type Alloys by Substituting Ni with M(M=Cu,Co,Mn)[J].Journal of Wuhan University of Technology,2017,32(3):685-694.

[141]N Kuriyama,T Sakai,H Miyamura,et al,T Iwasaki.Electrochemical Impedance and Deterioration Behavior of Metal Hydride Electrodes[J].Journal of Alloys图示Compounds,1993,202(1-2):183-197.

[142]L Wang,X H Wang,L X Chen,et al.Effect of Ni Content on the Electrochemical Performance of the Ball-milled La2 Mg17-x Ni x +200 wt.%Ni(x=0,1,3,5)Composites[J].Journal of Alloys图示Compounds,2007,428(1-2):338-343.

[143]X Y Zhao,Y Ding,L Q Ma,et al.Electrochemical Properties of Mm Ni3.8 Co0.75 Mn0.4 Al0.2 Hydrogen Storage Alloy Modified with Nanocrystalline Nickel[J].Hydrogen Energy,2008(33):6727-6733.

[144]N Hanada,T Ichikawa,H Fujii.Catalytic Effect of Nanoparticle 3d-Transition Metals on Hydrogen Storage Properties in Magnesium Hydride Mg H 2 Prepared by Mechanical Milling[J].Journal of Physical Chemistry B,2005(109):7188-7194.

[145]K Takahashi,S Isobe,S Ohnuki.The Catalytic Effect of Nb,Nb O and Nb2 O5 with Different Surface Planes on Dehydrogenation in Mg H 2:Density Functional Theory Study[J].Journal of Alloys图示Compounds,2013(580):S25-S28.

[146]R R Shahi,A Bhatnagar,S K Pandey,et al.Effects of Ti-based Catalysts and Synergistic Effect of SWCNTs-TiF3 on Bydrogen Uptake and Release From Mg H 2[J].Hydrogen Energy,2014(39):14255-14261.

[147]L P Ma,P Wang,X D Kang.Preliminary Investigation on the Catalytic Mechanism of TiF3 Additive in Mg H 2-TiF3 H-storage System[J].Journal of Materical Research,2007(22):7-15.

[148]Hu Feng,Li Yong-Zhi,Xu Jian-Yi.Studying of Electrochemical Discharging and Kinetic Properties of Ni-TiF3-Ce Mg12 Composite Materials with Nanocrystalline and Amorphous Structure[J].Applied Surface Science,2018(447):15-21.

[149]A Grzech,U Lafont,P C M M Magusin.Microscopic Study of TiF3 as Hydrogen Storage Catalyst for Mg H 2[J].Journal of Physical Chemistry C,2012(116):26027.

[150]Jun Sung Kim,Chang Rae Lee,Jae Woong Choi.Effect of F-treatment on Degradation of Mg2 Ni Electrode Alloy Fabricated by Mechanical Alloying[J].Power Sources,2002(104):201.

[151]H Chai,H Gu,Y F Zhu.Effect of TiF3 on the Hy-drogen Desorption Property of Mg95 Ni5 by Hydriding Combustion Synthesis[J].Rare Metal Materials Engineering,2010,39(1):50.

[152]Feng Hu,Yongzhi Li,Jianyi Xu,et al.Microstructure and Electrochemical Performance of Ce Mg12/Ni/TiF3 Composites for Hydrogen Storage[J].Journal of Materials Engineering and Performance,2018,27(9):4507-4513.

[153]J Bicerano,J E Keem,H B Schlegel.Theoretical Studies of Hydro-gen Storage in Binary Ti-Ni,Ti-Cu and Ti-Fe Alloys[J].Theoretical Chemistry Accounts,1986,70(4):265.

[154]W L Zhang,M P Sridhar Kumar,S Srinivasan.AC Impedance Studies on Metal Hydride Electrodes[J].Electrochemical Society,1995(142):2935.

[155]B V Ratnakumar,C Witham,R C Bowman Jr.Electrochemical Studies on La Ni5-x Sn x Metal Hydride Alloys[J].Electrochemical Society,1996,143(8):2578.

[156]J Cui,J Liu,H Wang,et al.Mg-Tm(Tm:Ti,Nb,V,Co,Mo or Ni)Core-shell Like Nanostructures:Synthesis,Hydrogen Storage Performance and Catalytic Mechanism[J].Materials Chemisty A,2014(2):9645-9655.

[157]Chen M,Xiao X Z,Zhang M,et al.Excellent Synergistic Catalytic Mechanism of In-situ Formed Nanosized Mg2 Ni and Multiple Valence Titanium for Improved Hydrogen Desorption Properties of Magnesium Hydride[J].International Journal of Hydrogen Energy,2019(44):1750-1759.

[158]Ouyang L Z,Ye S Y,Dong H W,et al.Effect of Interfacial Free energy on Hydriding Reaction of Mg-Ni Thin Films[J].Applied Physics Letters,2007,90(2):19-26.

[159]Chitsaz K L,Raygan S H,Pourabdoli M.Mechanical Milling of Mg,Ni and Y Powder Mixture and Investigating the Effects of Produced Nanostructured Mg Ni4 Y on Hydrogen Desorption Properties of Mg H 2[J].International Journal of Hydrogen Energy,2013(38):6687-6693.

[160]Wu Z W,Li Y T,Zhang Q A.Catalytic Effect of Nanostructured Mg2 Ni and YH 2/YH 3 on Hydrogen Absorption-desorption Kinetics of the Mg-Cu-H System [J].Journal of Alloys 图示Compounds an Interdisciplinary,2016(685):639-646.

[161]Song M Y,Kwak Y J,Lee S H,et al.Development of Mg H 2-Ni Hydrogen Storage Alloy Requiring No Activation Process via Reactive Mechanical Grinding[J].Journal of the Korean Institute of Metals图示Materials,2012,50(12):949-953.

[162]Ma L P,Wang P,Cheng H M.Improving Hydrogen Sorption Kinetics of Mg H 2 by Mechanical Milling with TiF3[J].Journal of Alloys and Compounds,2007(432):L1-L4.

[163]Ma L P,Wang P,Cheng H M.Hydrogen Sorption Kinetics of Mg H 2 Catalyzed with Titanium Compounds[J].International Journal of Hydrogen Energy,2010(35):3046-3050.

[164]Grzech A,Lafont U,Magusin C M M,et al.Microscopic Study of TiF3 as Hydrogen Storage Catalyst for Mg H 2[J].Journal of Physical Chemistry C,2012(116):26027-26035.

[165]Daryani M,Simchi A,Sadati M,et al.Effects of Ti-based Catalysts on Hydrogen Desorption Kinetics of Nanostructured Magnesium Hydride[J].International Journal of Hydrogen Energy,2014 (39):21007-21014.

[166]Pukazhselvan D,Nasani N,Correia P,et al.Evolution of Reduced Ti Containing Phase(s)in Mg H 2/TiO 2 System and Its Effect on the Hydrogen Storage Behavior of Mg H 2[J].Journal of Power Sources,2017,362:174-183.

[167]Chai H,Gu H,Zhu Y F,et al.Effect of TiF3 on the Hydrogen Desorption Property of Mg95 Ni5 by Hydriding Combustion Synthesis[J].Rare Metal Materials and Engineering,2010,39(1):50-54.

[168]Hu F,Zhang Y H,Zhang Y,et al.Microstructure and Electrochemical Hydrogen Storage Characteristics of Ce Mg12+100 wt%Ni+Y wt%TiF3(Y=0,3,5)Alloys Prepared by Ball Milling[J].Journal of Inorganic Materials,2013,28(2):1-7.

[169]Tortoza M S,Humphries T D,Sheppard D A,et al.Thermodynamics and Performance of the Mg-H-F System for Thermochemical Energy Storage Applications[J].Physical Chemistry Chemical Physics Pccp,2018(20):2274-2283.

[170]Barkhordarian G,Klassen T,Bormann R.Fast Hydrogen Sorption Kinetics of Nanocrystalline Mg Using Nb2 O5 as Catalyst[J].Scripta Materialia,2003(49):213-217.

[171]Zhao Xin,Han Shumin,Li Yuan,Chen Xiaocui,Ke Dandan.Effect of Ce H 2.29 on Microstructure and Hydrogen Properties of LiBH 4-Mg2 Ni H 4 Composite[J].International Journal of Minerals,Metallurgy and Materials,2015(22):423-426.

[172]Saidi T Sabitu,Andrew J Goudy.Dehydrogenation Kinetics and Modeling Studies of Mg H 2 Enhanced by Nb F5 Catalyst Using Constant Pressure Thermodynamic Forces[J].International Journal of Hydrogen Energy,2012(37):12301-12306.

[173]Kumar S,Kojima Y,Dey G K.Morphological Effects of Nb2 O 5 on Mg-Mg H 2 System for Thermal Energy Storage Application[J].International Journal of Hydrogen Energy,2018(43):809-816.

[174]Lee S H,Kwak Y J,Park H R,et al.Preparation and Characterization of Nb F5-added Mg Hydrogen Storage Alloy[J].International Journal of Hydrogen Energy,2014(39):16486-16492.

[175]A Pighin S S,Coco B,Troiani H,J Castro F,Urretavizcaya G.Effect of Additive Distribution in H 2 Absorption and Desorption Kinetics in Mg H 2 Milled with Nb H 0.9 or NbF5[J].International Journal of Hydrogen Energy,2018(43):7430-7439.

[176]Jin S A,Shim J H,Cho Y W,et al.Dehydrogenation and Hydrogenation Characteristics of Mg H 2 with Transition Metal Fluorides[J].Journal of Power Sources,2007(172):859-862.

[177]Recham N,Bhat V V,Kandavel M,et al.Reduction of Hydrogen Desorption Temperature of Ball-milled Mg H 2 by Nb F5 Addition[J].Journal of Alloys and Compounds,2008(464):377-382.

[178]Hu F,Li Y Z,Xu J Y,et al.Studying of Electrochemical Discharging and Kinetic Properties of Ni-TiF3-Ce Mg12 Composite Materials with Nanocrystalline and Amorphous Structure[J].Applied Surface Science,2018(447):15-21.

[179]Mulder F M,Singh S,Bolhuis S,et al.Extended Solubility Limits and Nanograin Refinement in Ti/Zr Fluoride-catalyzed Mg H 2[J].The Journal of Physical Chemistry C,2012(116):2001-2012.

[180] 汪峻峰.金属氟化物对Mg H 2 体系解氢性能的理论机制研究[D].长沙:湖南大学,2018.

[181]Pighin S A,Urretavizcaya G,Castro F J.Reversible Hydrogen Storage in Mg(H x F1-x)2 Solid Solutions[J].Journal of Alloys and Compounds,2017(708):108-114.

[182]Novoselov K S,Falko V I,Colombo L,et al.A Roadmap for Graphene[J].Nature,2012(490):192-200.

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