OALib Journal期刊
ISSN: 2333-9721
费用:99美元
|
|
|
聚苯胺对钯催化甲酸电氧化反应的促进作用
DOI: 10.1016/S1872-2067(15)60863-4, PP. 943-951
Keywords: 钯,聚苯胺,电催化,甲酸电氧化反应
Abstract:
?钯基纳米材料是甲酸电氧化反应的优良催化剂.本工作制备了两个系列钯基催化剂,并考察了聚苯胺对钯上甲酸电氧化反应的助催化作用.一种是以聚苯胺为基底,在其表面电沉积钯纳米粒子,制得nPANI/Pd催化剂(n表示聚合苯胺的循环数);另一种是直接在商业Pd/C催化剂表面电聚合苯胺,制得Pd/C/nPANI催化剂.结果显示,聚苯胺单独存在时对甲酸电氧化反应没有催化活性,但其可对钯上甲酸电氧化反应呈现明显的促进作用,且促进作用与聚苯胺的厚度(聚合循环数)密切相关.在两个系列催化剂中,15PANI/Pd和Pd/C/20PANI显示出最高的催化性能.15PANI/Pd中钯的质量比催化活性是纯钯催化剂的7.5倍;Pd/C/20PANI中钯的质量比催化活性和本征催化活性分别是商业Pd/C催化剂的2.3和3.3倍.钯催化性能的提升与聚苯胺和钯纳米粒子间的电子效应有关.
References
[1] | Hoffmann P. Tomorrow's Energy: Hydrogen, Fuel Cells, and the Prospects for a Cleaner Planet. MIT Press, 2012
|
[2] | Zhang H W, Shen P K. Chem Rev, 2012, 112: 2780
|
[3] | Yan Z Y, Li B, Yang D J, Ma J X. Chin J Catal (严泽宇, 李冰, 杨代军, 马建新. 催化学报), 2013, 34: 1471
|
[4] | Birry L, Lasia A. Electrochim Acta, 2006, 51: 3356
|
[5] | Zhou W J, Lee J Y. J Phys Chem C, 2008, 112: 3789
|
[6] | Aricò A S, Srinivasan S, Antonucci V. Fuel Cells, 2001, 1: 133
|
[7] | Song S Q, Tsiakaras P. Appl Catal B, 2006, 63: 187
|
[8] | Luo Y L, Liang Z X, Liao S J. Chin J Catal (罗远来, 梁振兴, 廖世军. 催化学报), 2010, 31: 141
|
[9] | Yu X W, Pickup P G. J Power Sources, 2008, 182: 124
|
[10] | Mazumder V, Chi M F, Mankin M N, Liu Y, Metin ?, Sun D H, More K L, Sun S H. Nano Lett, 2012, 12: 1102
|
[11] | Jiang K, Cai W B. Appl Catal B, 2014, 147: 185
|
[12] | Chen J W, Li Y J, Liu S R, Wang G, Tian J, Jiang C P, Zhu S F, Wang R L. Appl Surf Sci, 2013, 287: 457
|
[13] | Wang J Y, Kang Y Y, Yang H, Cai W B. J Phys Chem C, 2009, 113: 8366
|
[14] | Masud J, Alam M T, Miah Md R, Okajima T, Ohsaka T. Electrochem Commun, 2011, 13: 86
|
[15] | Hu C G, Cao Y X, Yang L, Bai Z Y, Guo Y M, Wang K, Xu P L, Zhou J G. Appl Surf Sci, 2011, 257: 7968
|
[16] | Sun Z P, Zhang X G, Tong H, Xue R L, Liang Y Y, Li H L. Appl Surf Sci, 2009, 256: 33
|
[17] | Chen S G, Wei Z D, Qi X Q, Dong L C, Guo Y G, Wan L J, Shao Z G, Li L. J Am Chem Soc, 2012, 134: 13252
|
[18] | Pandey R K, Lakshminarayanan V. J Phys Chem C, 2009, 113: 21596
|
[19] | Ding K G, Jia H T, Wei S Y, Guo Z H. Ind Eng Chem Res, 2011, 50: 7077
|
[20] | Ríos E, Abarca S, Daccarett P, Hguyen Cong N, Martel D, Marco J F, Gancedo J R, Gautier J L. Int J Hydrogen Energy, 2008, 33: 4945
|
[21] | Dong B, Song D F, Zheng L Q, Xu J K, Li N. J Electroanal Chem, 2009, 633: 63
|
[22] | Selvaraj V, Alagar M, Hamerton I. Appl Catal B, 2007, 73: 172
|
[23] | Zhou W Q, Xu J K, Du Y K, Yang P. Int J Hydrogen Energy, 2011, 36: 1903
|
[24] | Feng Y Y, Yin Q Y, Lu G P, Yang H F, Zhu X, Kong D S, You J M. J Power Sources, 2014, 272: 606
|
[25] | Feng Y Y, Liu Z H, Xu Y, Wang P, Wang W H, Kong D S. J Power Sources, 2013, 232: 99
|
[26] | Wang L C, Xu L Q, Sun C, Qian Y T. J Mater Chem, 2009, 19: 1989
|
[27] | Yaldagard M, Jahanshahi M, Seghatoleslami N. Appl Surf Sci, 2014, 317: 496
|
[28] | Yang Y, Diao M H, Gao M M, Sun X F, Liu X W, Zhang G H, Qi Z, Wang S G. Electrochim Acta, 2014, 132: 496
|
[29] | He B L, Tang Q W, Wang M, Chen H Y, Yuan S S. ACS Appl Mater Interface, 2014, 6: 8230
|
[30] | Niu L, Li Q H, Wei F H, Chen X, Wang H. Synth Met, 2003, 139: 271
|
[31] | Wang Z, Zhu Z Z, Shi J, Li H L. Appl Surf Sci, 2007, 253: 8811
|
[32] | Pan W, Zhang X K, Ma H Y, Zhang J T. J Phys Chem C, 2008, 112: 2456
|
[33] | Zhang J T, Huang M H, Ma H Y, Tian F, Pan W, Chen S H. Electro-chem Commun, 2007, 9: 1298
|
Full-Text
|
|
Contact Us
service@oalib.com QQ:3279437679 
WhatsApp +8615387084133
|
|