跳到主要导航 跳到搜索 跳到主要内容

Preparation of TiO2-nanorods supported Pd catalyst and its electrocatalytic oxidation on formic acid

  • Yi Shi
  • , Jianping Li
  • , Junfei Xing
  • , Meiling Xiao
  • , Yu Chen
  • , Yiming Zhou
  • , Tianhong Lu
  • , Yawen Tang*
  • *此作品的通讯作者
  • Nanjing Normal University

科研成果: 期刊稿件文章同行评审

摘要

TiO2 nanorods (TiO2-R) and irregular TiO2 (TiO2-I) with anatase phase structure are synthesized by hydrothermal synthesis and inorganic sol gel method, respectively. Using as-prepared TiO2 as support, Pd/TiO2 catalysts are prepared by using sodium ethylenediamine tetracetate (EDTA) as complexing agent and NaBH4 as reductant. The studies of transmission electron microscopy (TEM) and X-ray diffraction (XRD) reveal that the average particle size of Pd/TiO2-R catalyst is very similar to that of Pd/TiO2-I catalyst. Cyclic voltammetry measurements show that the peak current of formic acid oxidation at Pd/TiO2-R catalyst increases by 70%. Chronoamperometric measurements indicate that the current density at the Pd/TiO2-R catalyst electrode at 3000 s is almost 16 times larger than that at the Pd/TiO2-I catalyst electrode. These electrochemical experiments show that the electrocatalytic activity and long-term operation stability of Pd/TiO2-R catalyst are much better than that of Pd/TiO2-I catalyst for formic acid oxidation in acidic media, indicating that TiO2 nanorods support material can effectively promote the electrocatalytic activity and stability of Pd catalyst for formic acid electrooxidation. Likely, TiO2 nanorods possess good electronic conductivity and abundant surface oxygen-containing groups, which improve the electrocatalytic activity and the anti-poisoned performance of Pd catalyst for the formic acid electrooxidation. Thus, TiO2 nanorods with anatase phase structure possess the potential application prospect in direct formic acid fuel cell (DFAFC).

源语言英语
页(从-至)1257-1262
页数6
期刊Acta Chimica Sinica
70
11
DOI
出版状态已出版 - 14 3月 2012
已对外发布

指纹

探究 'Preparation of TiO2-nanorods supported Pd catalyst and its electrocatalytic oxidation on formic acid' 的科研主题。它们共同构成独一无二的指纹。

引用此