[1] LEE B D,JUNG D H,KO Y H. Analysis of DMFC/battery hybrid power system for portable applications[J]. Journal of Power Sources, 2004,131(1/2):207-212.
[2] ZHANG Z H,LIU J,GU J J,et al. An overview of metal oxide materials as electrocatalysts and supports for polymer electrolyte fuel cells[J]. Energy & Environmental Science,2014,7(8):2535-2558.
[3] SHARMA S,POLLET B G. Support materials for PEMFC and DMFC electrocatalysts-A review[J]. Journal of Power Sources, 2013,208(2):96-119.
[4] LI L,HU L P,LI J,et al. Enhanced stability of Pt nanoparticle electrocatalysts for fuel cells[J]. Nano Research,2015,8(2):418-440.
[5] 鞠剑峰,吴东辉. 直接甲醇燃料电池阳极催化剂的研究进展[J]. 化工进展,2009,28(4):646-649. JU J F,WU D H. Development of anode catalysts for direct methanol fuel cell[J]. Chemical Industry and Engineering Progress,2009,28(4):646-649.
[6] 谭习有,黎华玲,彭洪亮,等. 石墨烯制备新技术及其在燃料电池催化剂中的应用[J]. 化工进展,2013,32(s1):158-167. TAN X Y,LI H L,PENG H L,et al. Progress in new preparation techniques of graphene and application for catalysts in fuel cells[J]. Chemical Industry and Engineering Progress,2013,32(s1):158-167.
[7] BERANEK R,MACAK J M,GARTNER M,et al. Enhanced visible light photocurrent generation at surface-modified TiO2 nanotubes[J]. Electrochimica Acta,2009,54(9):2640-2646.
[8] YUE X Y,YANG W X,LIU X J,et al. A facile method to prepare Pt/C/TiO2 nanotubes electrode for electro-oxidation of methanol[J]. Electrochimica Acta,2015,174:667-671.
[9] SUI X L,WANG Z B,XIA Y F,et al. A rapid synthesis of TiO2 nanotubes in an ethylene glycol system by anodization as a Pt-based catalyst support for methanol electrooxidation[J]. RSC Advances, 2015,5(45):35518-35523.
[10] SUI X L,WANG Z B,YANG M,et al. Investigation on C-TiO2 nanotubes composite as Pt catalyst support for methanol electrooxidation[J]. Journal of Power Sources,2014,255(6):43-51.
[11] SUI X L,WANG Z B,LI C Z,et al. Effect of core/shell structured TiO2@C nanowires support on the Pt catalytic performance for methanol electrooxidation[J]. Catalysis Science & Technology,2016, 6(11):3767-3775.
[12] CHU Y Y,WANG Z B,JIANG Z Z,et al. A novel structural design of a Pt/C-CeO2 catalyst with improved performance for methanol electro-oxidation by β-cyclodextrin carbonization[J]. Advanced Materials,2011,23(27):3100-3104.
[13] OH J K,LEE Y W,HAN S B,et al. 3-Dimensional TiO2 nanostructure supports and their improved electrochemical properties in methanol electrooxidation[J]. Catalysis Science & Technology, 2011,1(3):394-396.
[14] WANG Y Q,WEI Z D,GAO B,et al. The electrochemical oxidation of methanol on a Pt/TNTs/Ti electrode enhanced by illumination[J]. Journal of Power Sources,2011,196(3):1132-1135.
[15] HU Y M,ZHU A M,ZHANG C L,et al. Microwave-assisted synthesis of double-shell PtRu/TiO2 catalyst towards methanol electro-oxidation[J]. International Journal of Hydrogen Energy, 2015,40(45):15652-15662.
[16] WANG W,WANG H,KEY J,et al. Nanoparticulate TiO2-promoted PtRu/C catalyst for methanol oxidation[J]. Ionics,2013,19(3):529-534.
[17] WANG Q,WANG G X, SASAKI K, et al. Structure and electrochemical activity of WOx-supported PtRu catalyst using three-dimensionally ordered macroporous WO3 as the template[J]. Journal of Power Sources,2013,241(11):728-735.
[18] SHI M Q,SONG G H,YANG P P,et al. A new biomass template to prepare multi-channel structure of WO3 and its application for methanol electro-oxidation[J]. Materials Letters,2015,153:124-127.
[19] GULINO A,PARKER S,JONES F H,et al. Influence of metal-metal bonds on electron spectra of MoO2 and WO2[J]. Journal of the Chemical Society Faraday Transactions,1996,92:2137-2141.
[20] ZHOU Y,HU X C,LIU X H,et al. Core-shell hierarchical WO2/WO3 microspheres as an electrocatalyst support for methanol electrooxidation[J]. Chemical Communications,2015,51(83):15297-15299.
[21] LEI F L,LI Z S,YE L T,et al. One-pot synthesis of Pt/SnO2/GNs and its electro-photo-synergistic catalysis for methanol oxidation[J]. International Journal of Hydrogen Energy,2015,41(1):255-264.
[22] FAN Y,LIU J H,LU H T,et al. Hierarchical structure SnO2 supported Pt nanoparticles as enhanced electrocatalyst for methanol oxidation[J]. Electrochimica Acta,2012,76(8):475-479.
[23] ZHANG H L,HU C G,HE X S,et al. Pt support of multidimensional active sites and radial channels formed by SnO2 flower-like crystals for methanol and ethanol oxidation[J]. Journal of Power Sources, 2011,196(10):4499-4505.
[24] KAKATI N,MAITI J,JEE S H,et al. Hydrothermal synthesis of PtRu on CNT/SnO2 composite as anode catalyst for methanol oxidation fuel cell[J]. Journal of Alloys & Compounds,2011,509(18):5617-5622.
[25] RUIZ-CAMACHO B, RODRIGUEZ-SANTOYO H H, MEDINA-FLORES J M,et al. Platinum deposited on TiO2-C and SnO2-C composites for methanol oxidation and oxygen reduction[J]. Electrochimica Acta,2014,120:344-349.
[26] GAO Y X,WANG W D,CHANG S J,et al. Morphology effect of CeO2 support in the preparation,metal-support interaction,and catalytic performance of Pt/CeO2 catalysts[J]. ChemCatChem,2013, 5(12):3610-3620.
[27] ZHANG D F,ZHANG C S,CHEN Y M,et al. Support shape effect on the catalytic performance of Pt/CeO2 nanostructures for methanol electrooxidation[J]. Electrochimica Acta,2014,139:42-47.
[28] QU X M,YOU L X,TIAN X C,et al. CeO2 nanorods with high energy surfaces as electrocatalytical supports for methanol electrooxidation[J]. Electrochimica Acta,2015,182:1078-1084.
[29] WANG W H,LU X L,ZHU M D,et al. Rod-shaped CeO2 intercalated graphene for supporting Pt composite as anode catalysts for DMFC[J]. Electrochimica Acta,2015,176:1338-1342.
[30] CHUN H J,KIM D B,LIM D H,et al. A synthesis of CO-tolerant Nb2O5-promoted Pt/C catalyst for direct methanol fuel cell:its physical and electrochemical characterization[J]. International Journal of Hydrogen Energy,2010,35(12):6399-6408.
[31] MA L,ZHAO X,SI F Z,et al. A comparative study of Pt/C and Pt-MoOx/C catalysts with various compositions for methanol electro-oxidation[J]. Electrochimica Acta,2010,55(28):9105-9112.
[32] WANG H J,ZHENG J D,PENG F,et al. Pt/IrO2/CNT anode catalyst with high performance for direct methanol fuel cells[J]. Catalysis Communications,2013,33:34-37.
[33] QIU Z,HUANG H,DU J,et al. Biotemplated synthesis of bark-structured TiC nanowires as Pt catalyst supports with enhanced electrocatalytic activity and durability for methanol oxidation[J]. Journal of Materials Chemistry A,2014,2(21):8003-8008.
[34] TAO X Y,LI Y P,DU J,et al. A generic bamboo-based carbothermal method for preparing carbide (SiC,B4C,TiC,TaC,NbC,TixNb1-xC, and TaxNb1-xC)nanowires[J]. Journal of Materials Chemistry,2011, 21(25):9095-9102.
[35] QIU Z,HUANG H,DU J,et al. NbC nanowire-supported Pt nanoparticles as a high performance catalyst for methanol electrooxidation[J]. Journal of Physical Chemistry C,2013,117(27):13770-13775.
[36] HAM D J,KIM Y K,HAN S H,et al. Pt/WC as an anode catalyst for PEMFC:activity and CO tolerance[J]. Catalysis Today,2008,132(1/2/3/4):117-122.
[37] WANG Y W,ZHANG L Z,DENG K J,et al. Low temperature synthesis and photocatalytic activity of rutile TiO2 nanorod superstructures[J]. Journal of Physical Chemistry C,2007,111(6):2709-2714.
[38] FU Z,HUANG Q M,XIANG X D,et al. Mesoporous tungsten carbide-supported platinum as carbon monoxide-tolerant electrocatalyst for methanol oxidation[J]. International Journal of Hydrogen Energy,2012,37(5):4704-4709.
[39] MA C,BRANDON N,LI G H. Preparation and formation mechanism of hollow microspherical tungsten carbide with mesoporosity[J].Journal of Physical Chemistry C,2007,111(26):9504-9508.
[40] ZELLNER M B,CHEN J G. Surface science and electrochemical studies of WC and W2C PVD films as potential electrocatalysts[J]. Catalysis Today,2005,99(3/4):299-307.
[41] LANG X L,SHI M Q,JIANG Y K,et al. Tungsten carbide/porous carbon core-shell nanocomposites as a catalyst support for methanol oxidation[J]. RSC Advances,2016,6(17):13873-13880.
[42] ZHANG K,YANG W,MA C,et al. A highly active stable and synergistic Pt nanoparticles/Mo2C nanotube catalyst for methanol electro-oxidation[J]. NPG Asia Material,2015,7(1):e153.
[43] PATEL P P,DATTA M K,JAMPANI P H,et al. High performance and durable nanostructured TiN supported Pt50-Ru50 anode catalyst for direct methanol fuel cell(DMFC)[J]. Journal of Power Sources, 2015,293:437-446.
[44] QI L,YIN Y,SHI W Y,et al. Intermittent microwave synthesis of nanostructured Pt/TiN-graphene with high catalytic activity for methanol oxidation[J]. International Journal of Hydrogen Energy, 2014,39(28):16036-16042.
[45] MUSTHAFA O T,SAMPATH S. High performance platinized titanium nitride catalyst for methanol oxidation[J]. Chemical Communications,2008,1(1):67-69.
[46] YANG M H,CUI Z M,DISALVO F J. Mesoporous titanium nitride supported Pt nanoparticles as high performance catalysts for methanol electrooxidation[J]. Physical Chemistry Chemical Physics,2013,15(4):1088-1092.
[47] YANG M H,GUARECUCO R, DISALVO F J. Mesoporous chromium nitride as high performance catalyst support for methanol electrooxidation[J]. Chemistry of Materials,2013,25(9):1783-1787.
[48] XIAO Y H,FU Z G,ZHAN G H,et al. Increasing Pt methanol oxidation reaction activity and durability with a titanium molybdenum nitride catalyst support[J]. Journal of Power Sources, 2015,273:33-40.
[49] HUANG Z,LIN R,FAN R J,et al. Effect of TiB2 pretreatment on Pt/TiB2 catalyst performance[J]. Electrochimica Acta,2014,139(26):48-53.
[50] PATIL S H,ANOTHUMAKKOOL B,SATHAYE S D,et al. Architecturally designed Pt-MoS2 and Pt-graphene composites for electrocatalytic methanol oxidation[J]. Physical Chemistry Chemical Physics,2015,17(39):26101-26110. |