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KOH-浸渍-还原法在炭纤维表面制备不同金属纳米催化剂涂层及其应用 被引量:1

COATING DIFFERENT METAL NANO-CATALYST PARTICLES ON CARBON FIBERS BY KOH-LMPREGNATION-REDUCTION AND THEIR APPLICATION
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摘要 为了催化炭纤维原位生长纳米炭纤维/纳米碳管,研究纳米炭纤维/纳米碳管在炭/炭复合材料中的应用,采用KOH-浸渍-还原法在炭纤维上制备纳米催化剂颗粒。首先用KOH处理炭纤维改变其形貌,然后将炭纤维分别在硝酸钴和硝酸镍催化剂前驱体溶液中浸渍,干燥,再用H2气还原制得催化剂颗粒,最后催化热解CO在炭纤维上原位生长纳米炭纤维/纳米碳管。结果表明:KOH处理能使炭纤维表面变得凹凸不平,有效的阻止了催化剂前驱体液体的流动,使涂层均匀;浸渍-还原法能获得粒径小、均匀、适合纳米炭纤维生长的金属颗粒;与Co纳米颗粒相比,Ni分散效果和催化效果更好。 In order to in situ growing carbon nanofibers/carbon nanotubes on carbon fibers for further investigating the application of carbon nanofibers/carbon nanotubes in C/C composites,nano-nickel catalyst particles were coated on the carbon fibers' surfaces by KOH-impregnation-reduction method. First,carbon fibers were chemical treated with KOH,and then catalyst particles were produced by impregnated in Ni (NO3)2 or Co(NO3)2 solution,followed by reduction with Hz as redution gas. Finally,in situ grown carbon nanofibers/carbon nanotubes were produced by chemical vapor deposition with CO as carbon source. The results showed that KOH changed the surface of carbon fibers,which made coating of catalyst precursor was uniform. The procedure of impregnation-reduction could effectively coated nano - catalyst particles on carbon fibers for growing carbon nanofibers/carbon nanotubes. It was also found the dispersal and catalytic effect of Ni was better than Co catalyst.
出处 《炭素》 2007年第2期43-47,共5页 Carbon
基金 国家重点基础研究发展计划(973计划 编号:2006CB600904)资助项目
关键词 KOH-浸渍-还原 纳米炭纤维/纳米碳管 催化剂 炭/炭复合材料 KOH- impregnation- reduction carbon nanofibers/carbon nanotubes catalyst carbon/carbon composites
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  • 1Odam, T. W. Huang, J. L. Kim, P. Lieber, C. M. J. Phys. Chem. B. 2000,104,2794.
  • 2Hone, J. Batlogg, B. Benes, Z. Johnson, A. T. Fischer,J. E. Science. 2000,289(5485) ,1730.
  • 3Gong,Q. --M. Zhi, L. Bai,X. --D. Dan,L. Yun, Z. Ji, L. Mater Sc Eng A. 2004, 384, 209.
  • 4Iijima,S. Nature. 1991,354,56.
  • 5Ebbesen, T. W. Ajayan, P. M. Nature, 1992, 358,220.
  • 6Colbert ,D. T. Zhang,J. McClure ,S. M. Nikolaev, P. Chen, Z. Hafner, J. H. Owens, D. W. Kotula, P. G. Weaver, J. H. Rinzler, A. G. Smalley,R. E. Sciene, 1994,266,1218.
  • 7Andreas, T. Roland, L. Pavel, N. Dai, H. -- J.Pierre, P. Jerome, R. Xu, C. -- H. Young, H. L. Seong, G. K. Andrew. G. R. Daniel, T. C. Gustavo. E. S. David, T John, E, F Smalley, R. E. Science, 1996. 273,483.
  • 8Guo, T. Nikolaev, p. Rinzler, A. GTomanek, D. Colbert, D. T. Smalley, R. E. J. Phys. Chem. 1995,99(27), 10694.
  • 9Yacaman, M. J. Yoshida, M. M. Redon, L. Appl. Phys. Let. 1993,62(6) ,657.
  • 10Ci,L. --J. Wei,J. -Q. Wei,B. --Q. Ji,L. Xu,C.--L. Wu,D.--H. Carbon. 2001,39, 329.

二级参考文献41

  • 1[15]Marlot A, Kern P, Landolt D. Pulse plating of NiMo alloys from Ni-rich electrolytes[J]. Electrochimica Acta, 2002, 48(1): 29-36.
  • 2[16]Yin K M, Jan S L. Current pulse plating of nickel-iron alloys on rotating disk electrodes[J]. Surface and Coatings Technology, 1996, 79(1 - 3): 252 - 262.
  • 3[17]Kim J, No K, Lee C J. Growth and field emission carbon nanotubes on electroplated Ni catalyst coated on glass substrates[J]. Journal of Applied Physics, 2001, 90(5): 2591 - 2594.
  • 4[18]Fonseca A, Hernadi K, et al. Synthesis of singleand multi-wall carbon nanotubes over supported catalysts[J]. Applied Physics A, 1998, 67(1): 11 - 22.
  • 5[19]PAN Chun-xu, LIU Yue-li, CAO Feng, et al. Synthesis and growth mechanism of carbon nanotubes and nanofibers in ethanol flame[J]. Micron, 2004, 35 (6): 461 - 468.
  • 6[20]Alfantazi A M, Brehaut G, Erb U. The effect of substrate material on the microstructure of pulseplated Zn-Ni alloys[J]. Surface and Coating Technol ogy, 1997, 89(3): 239-244.
  • 7[21]Ghosh S K, Grover A K, Dey G K, et al. Nanocrystalline Ni-Cu alloy plating by pulse electrolysis[J]. Surface and Coating Technology, 2000, 126 (1): 48 - 63.
  • 8[22]Iijima S. Growth of carbon nanotubes[J]. Materials Science and Engineering B, 1993, 19(2): 172- 180.
  • 9[1]Yadasaki M, Kikuchi R, Ohki Y, et al. Behavior of Ni in carbon nanotube nucleation[J]. Applied Physics Letters, 1997, 70(14): 1817-1818.
  • 10[2]SHI Zu-jin,LIAN Yong-fu, ZHOU Xi-huang, et al. Mass-production of single-wall carbon nanotubes by arc discharge method[J]. Carbon, 1999, 377 (9): 1449 - 1453.

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