欢迎登录材料期刊网

材料期刊网

高级检索

多孔镍通过同时在水溶液中析出氢气及还原镍离子电沉积生成,其在强碱溶液中对乙醇表现出良好的电催化氧化效果.在1 mol/L KOH溶液中,多孔镍的电极反应为准可逆的p氢氧化镍与伊羟基氧化镍之间质子耦合电子转移.循环伏安图显示峰值电流密度与电势扫描速度平方根成线性关系,据此计算可得多孔镍的质子扩散系数值为2.92×10-8 cm2/s,其高于块状镍体系的质子扩散系数值约4个数量级,这可能由真实表面积增大导致.循环伏安法和计时电流法用来表征多孔镍对乙醇的电催化氧化能力,相对于(220)镍电极,多孔镍表现出更高的催化效率,计时电流法测量的催化反应速率常数为7.17×103 cm3/(mol·s).

参考文献

[1] 黄令;杨防祖;许书楷;周绍民.碱性介质中高择优取向(220)镍电极上乙醇的电氧化[J].应用化学,2005(6):590-594.
[2] Stradiotto, NR;Toghill, KE;Xiao, L;Moshar, A;Compton, RG.The Fabrication and Characterization of a Nickel Nanoparticle Modified Boron Doped Diamond Electrode for Electrocatalysis of Primary Alcohol Oxidation[J].Electroanalysis,200924(24):2627-2633.
[3] 孔景临;薛宽宏;何春建;邵颖;陈巧玲;姚建林;谢泳;田中群.镍纳米线电极的电化学氧化还原行为及其对乙醇的电化学氧化催化作用[J].应用化学,2001(6):462-465.
[4] Tian XK;Zhao XY;Zhang LD;Yang C;Pi ZB;Zhang SX.Performance of ethanol electro-oxidation on Ni-Cu alloy nanowires through composition modulation[J].Nanotechnology,200821(21):215711-1-215711-6-0.
[5] Zheng Liu;Zhilin Li;Feng Wang;Jingjun Liu;JingJi;Jianjun Wang;Weihong Wang;Shiyong Qin;Lianghu Zhang.Synthesis of multi-walled carbon nanotube supported nickel catalysts by hydrazine reduction and their electrocatalytic activity on ethanol electro-oxidation[J].Materials Letters,201123/24(23/24):3396-3398.
[6] Wang, Z.;Du, Y.;Zhang, F.;Zheng, Z.;Zhang, Y.;Wang, C..High electrocatalytic activity of non-noble Ni-Co/graphene catalyst for direct ethanol fuel cells[J].Journal of solid state electrochemistry,20131(1):99-107.
[7] Shu-Jin Zhang;Yi-Xiong Zheng;Lin-Shan Yuan;Li-Hua Zhao.Ni-B amorphous alloy nanoparticles modified nanoporous Cu toward ethanol oxidation in alkaline medium[J].Journal of Power Sources,2014Feb.1(Feb.1):428-436.
[8] Falk Muench;Mehtap Oezaslan;Markus Rauber;Sebastian Kaserer;Anne Fuchs;Eric Mankel;Joachim Broetz;Peter Strasser;Christina Roth;Wolfgang Ensinger.Electroless synthesis of nanostructured nickel and nickel-boron tubes and their performance as unsupported ethanol electrooxidation catalysts[J].Journal of Power Sources,2013Jan.15(Jan.15):243-252.
[9] Dahlborg, U;Bao, CM;Calvo-Dahlborg, M;Devred, F;Nieuwenhuys, BE.Structure and microstructure of leached Raney-type Al-Ni powders[J].Journal of Materials Science,200917(17):4653-4660.
[10] Xi Zhang;King-Ning Tu;Ya-Hong Xie;Chih-Hang Tung;Shuyan Xu.Single-Step Fabrication of Nickel Films with Arrayed Macropores and Nanostructured Skeletons[J].Advanced Materials,200614(14):1905-1909.
[11] Marozzi CA.;Chialvo AC..Development of electrode morphologies of interest in electrocatalysis. Part I: Electrodeposited porous nickel electrodes[J].Electrochimica Acta,200013(13):2111-2120.
[12] Leventis, N;Chandrasekaran, N;Sadekar, AG;Sotiriou-Leventis, C;Lu, HB.One-Pot Synthesis of Interpenetrating Inorganic/Organic Networks of CuO/Resorcinol-Formaldehyde Aerogels: Nanostructured Energetic Materials[J].Journal of the American Chemical Society,200913(13):4576-4579.
[13] Vladimir Paserin;Som Morcuson;Jun Shu;David S. Wilkinson.CVD Technique for Inco Nickel Foam Production[J].Advanced Engineering Materials,20046(6):454-459.
[14] Erri, P;Nader, J;Varma, A.Controlling combustion wave propagation for transition metal/alloy/cermet foam synthesis[J].Advanced Materials,20087(7):1243-1245.
[15] Plowman, Blake J.;Jones, Lathe A.;Bhargava, Suresh K..Building with bubbles: the formation of high surface area honeycomb-like films via hydrogen bubble templated electrodeposition[J].Chemical communications,201521(21):4331-4346.
[16] Xiangheng Niu;Minbo Lan;Hongli Zhao;Chen Chen.Highly Sensitive and Selective Nonenzymatic Detection of Glucose Using Three-Dimensional Porous Nickel Nanostructures[J].Analytical chemistry,20137(7):3561-3569.
[17] X. Y. Wang;J. Yan;Y. S. Zhang;H. T. Yuan;D. Y. Song.Cyclic voltammetric studies of pasted nickel hydroxide electrode microencapsulated by cobalt[J].Journal of Applied Electrochemistry,199812(12):1377-1382.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%