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TiO_2纳米管掺杂Pt/C催化剂对甲醇电氧化性能影响 被引量:2

Effects of TiO_2 nanotubes mixed with Pt/C electrocatalyst on electro-oxidation performance of methanol
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摘要 利用电化学方法研究了TiO2纳米管掺杂商业Pt/C催化剂(JM公司)对甲醇电氧化性能的影响。通过对不同掺杂量、不同制备方法等研究,利用循环伏安法和恒电位氧化法等手段,表明:掺杂20%TiO2纳米管的电催化剂对甲醇氧化具有较高活性,这可能是由于Pt和Ti之间产生的相互作用,使得甲醇更容易被活化,而二氧化钛本身携带的氧源,更有助于催化氧化甲醇反应的中间产物,减弱了Pt催化剂中毒程度。 The electrocatalysts were prepared by mixing commercial 20% Pt/C (from Johnson Matthery) with TiO2 nanotubes. The electrochemical behaviors were studied in sulfuric acid solution and methanol solution by cyclic voltammtry and chronoamperometry. Different additional quantities and preparation methods were evaluated. The results show that commercial 20% Pt/C electrocatalysts mixed with 20% (mass percentage) TiO2 nanotubes has the higher activity to oxidize the methanol, which may be attributed to the interaction between Pt and Ti. Furthermore, the oxygen source which TiO2 holds may help to the next oxidation of the intermediate from methanol electro-oxidation and may ease the poison degree of the Pt/C catalysts.
出处 《电源技术》 CAS CSCD 北大核心 2007年第9期713-716,共4页 Chinese Journal of Power Sources
基金 国家自然科学基金资助项目(No.20476055) 973计划(No.2003CB214500)
关键词 直接甲醇燃料电池 TIO2纳米管 电催化剂 掺杂 direct methanol fuel celI(DMFC) TiO2 nanotube electrocatalyst mixing
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参考文献13

  • 1LAMY C, LE' GER J M, SRINIVASAN S. Direct methanol fuel cells-from a 20th century electrochemists' dream to a 21^st century emerging technology, in: J.O.M. Bockris, B.E. Conway (Eds.), Modem Aspects of Electrochemistry[M]. New York: Plenum Press, 2000, 34(Chapter 3): 53-117.
  • 2FUJIWARA N, FRIEDRICH K A, STIMMING V. Ethanol oxidation on PtRu electrodes studied by differential electrochemical mass spectrometry [J]. J Electroanal Chem, 1999, 472: 120.
  • 3GOTZ M, WENDT H. Binary and ternary anode catalyst formulations including the elements W, Sn and Mo for PEMFCs operated on methanol or reformate gas [J]. Electrochim Acta, 1998, 43 (24): 3637-3644.
  • 4NETO A O, GIZ M J, PETEZ J, et al. The electro-oxidation of ethanol on Pt-Ru and Pt-Mo particles supported on high-surface-area carbon [J]. J Electrochem Soc, 2002, 149 (3): A 272.
  • 5CHI N, CHAN K Y, LEE D P. Electrocatalytic oxidation of formic acid by Pt/Co nanoparticles [J]. Catalysis Letters, 2001, 71: 1-2.
  • 6MUKERJEE S, SRINIVASAN S. Enhanced electrocatalysis of oxygen reduction on platinum alloys in proton exchange membrane fuel cells [J]. J Electroanal Chem, 1993, 357: 201.
  • 7ELZBIETA F, GRZEGORZ L, THOMAS C, et al. Carbon nanotubes with Pt-Ru catalyst for methanol fuel cell [J]. Electrochemistry Communications, 2006, 8 (1): 129-132.
  • 8HYEON TW, HAN S J, SUNG Y E, et al. High-performance direct methanol fuel cell electrodes using solid-phase-ynthesized carbon nanocoils [J]. Angew Chem Int Ed, 2003, 42: 4352-4356.
  • 9CHIN H C, TSEUNG C C. The performance of a Pt/C oxygen electrode in the presence of dissolved tungsten in sulfuric acid [J]. Electrochemical and Solid-State Letters, 1999, 8 (2): 379-381.
  • 10XIONG L, MANTHIRAM A. Synthesis and characterization of methanol tolerant Pt/TiOx/C nanocomposites for oxygen reduction in direct methanol fuel cells [J]. Electrochimica Acta, 2004, 494: 163-170.

二级参考文献17

  • 1Ooman K V, Gong D W, Maggie P, et al. Sensors and Actuators B, 2003,93:338-344.
  • 2Fujishima K, Yamada I. J. Appl. Phys., 1989,65:619-623.
  • 3Adachi M, Murata Y, Harada M. Chem. Lett., 2000,8:942- 945.
  • 4Hoyer P. Langmuir, 1996,12:1411-1413.
  • 5Foss Jr C A, Hornyak G L, Stockert J A, et al. J. Phys. Chem., 1994,98:2963-2971.
  • 6Kasuga T, Hiramatsu M, Hoson A, et al. Langmuir, 1998,14: 3160-3163.
  • 7Zhang Q H, Gao L, Sun J, et al. Chem. Mater., 2002,2:226- 227.
  • 8Zhang M, Bando Y, Wada K. J. Mater. Sci. Lett., 2001,20(2): 167-170.
  • 9Peng T Y, Yang H P, Chang G. Chem. Lett., 2004,33(3):336- 337.
  • 10Gong D W, Grimes C A, Varghese O K. J. Mater. Res., 2001, 169(12):3331-3334.

共引文献25

同被引文献34

  • 1杜娟,原鲜霞,巢亚军,马紫峰.直接甲醇燃料电池电催化剂研究进展[J].稀有金属材料与工程,2007,36(7):1309-1312. 被引量:16
  • 2SHIM J, LEE C R, LEE H K, et al. Electrochemical characteristics of Pt-WO3/C and Pt-TiO2/C electrocatalysts in a polymer electrolyte fuel cell[J]. Journal of Power Sources, 2001, 102(1/2): 172-177.
  • 3RAJALAKSHMI N, LAKSHMI N, DHATHATHREYAN K S. Nano titanium oxide catalyst support for proton exchange membrane fuel cells [J]. International Journal of Hydrogen Energy, 2008, 33 (24): 7521-7526.
  • 4SHAO Z G, XU H F, LI M Q, et al. Hybrid Nation-inorganic oxides membrane doped with heteropolyacids for high temperature operation of proton exchange membrane fuel cell[J]. Solid State Ionics, 2006, 177(7/8): 779-785.
  • 5CHEN X, MAO S S. Titanium dioxide nanomaterials: Synthesis, properties, modifications, and applications[J]. Chemical Reviews, 2007, 107(7): 2891-2959.
  • 6PARK K W, SEOL K S. Nb-TiO2 supported Pt cathode catalyst for polymer electrolyte membrane fuel cells[J]. Electrochemistry Communications, 2007, 9(9): 2256-2260.
  • 7IRIE H, WATANABE Y, HASHIMOTO K. Nitrogen-concentration dependence on photocatalytic activity of TiO2 -xNx powders[J].Journal of Physical Chemistry B, 2003, 107(23): 5483-5486.
  • 8CHATTOPADHYAY J, KIM H R, MOON S B, et al. Performance of tin doped titania hollow spheres as electrocatalysts for hydrogen and oxygen production in water electrolysis[J]. International Journal of Hydrogen Energy, 2008, 33(13): 3270-3280.
  • 9TICIANELLI E A, DEROU1N C R, SRINIVASAN S. Localization of platinum in low catalyst loading electrodes to attain high-power densities in spe fuel-cells [J]. Journal of Electroanalytical Chemistry, 1988, 251(2): 275-295.
  • 10SONG H,QIU X,LI F.Effect of heat treatment on the performance of TiO2-Pt/CNT catalysts for methanol electro-oxidation[J].Electro-chimica Acta,2008,53:3708-3713.

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