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作为甲醇氧化独特的电催化剂载体,合成 3D 纳米多孔石墨碳的一种很有前途的方法。

A promising approach to the synthesis of 3D nanoporous graphitic carbon as a unique electrocatalyst support for methanol oxidation.

机构信息

Department of Materials Science and Engineering, Institute of Nanotechnology, National Chiao Tung University, Hsinchu 30050, Taiwan, ROC.

出版信息

ChemSusChem. 2010 Apr 26;3(4):460-6. doi: 10.1002/cssc.200900223.

Abstract

A 3D nanoporous graphitic carbon (g-C) material is synthesized by using an adamantane (C(10)H(16)) flame, and utilized to support a Pt(50)-Ru(50) alloy catalyst. The physico-chemical properties of the Pt(50)-Ru(50)/3D nanoporous g-C electrode are examined by a range of spectroscopy techniques as well as Brunauer-Emmett-Teller surface area analysis. Cyclic voltammetry measurements are used for electrochemical characterization of the Pt(50)-Ru(50)/3D nanoporous g-C electrode. The electrochemical investigations show that the supported Pt(50)-Ru(50) has excellent activity and stability towards methanol electro-oxidation. Good CO tolerance is also shown, and considered to be due to the presence of Ru nanoparticles. It is proposed that Ru is able to promote the oxidation of strongly adsorbed CO on Pt by supplying an oxygen source: Ru(OH)(ad). Moreover, the presence of 3D nanopores in the g-C support may also contribute to the observed higher current density by virtue of the easy transport of methanol and the oxidation products through these nanopores.

摘要

一种 3D 纳米多孔石墨碳(g-C)材料是通过使用金刚烷(C(10)H(16))火焰合成的,并用于支撑 Pt(50)-Ru(50)合金催化剂。Pt(50)-Ru(50)/3D 纳米多孔 g-C 电极的物理化学性质通过一系列光谱技术以及 Brunauer-Emmett-Teller 表面积分析进行了检查。循环伏安法测量用于电化学表征 Pt(50)-Ru(50)/3D 纳米多孔 g-C 电极。电化学研究表明,负载的 Pt(50)-Ru(50)对甲醇电氧化具有优异的活性和稳定性。还表现出良好的 CO 耐受性,这被认为是由于存在 Ru 纳米粒子。据推测,Ru 能够通过提供氧源 Ru(OH)(ad)来促进强吸附在 Pt 上的 CO 的氧化。此外,g-C 载体中存在 3D 纳米孔也可能通过这些纳米孔易于传输甲醇和氧化产物而有助于观察到更高的电流密度。

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