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用于改善析氧反应的圆柱形镍微结构的六方阵列

Hexagonal Arrays of Cylindrical Nickel Microstructures for Improved Oxygen Evolution Reaction.

机构信息

Department of Chemistry, Simon Fraser University , 8888 University Drive, Burnaby, British Columbia V5A 1S6, Canada.

ZincNyx Energy Solutions , 8765 Ash Street no. 1, Vancouver, British Columbia V6P 6T3, Canada.

出版信息

ACS Appl Mater Interfaces. 2017 Mar 1;9(8):7036-7043. doi: 10.1021/acsami.6b14129. Epub 2017 Feb 15.

Abstract

Fuel-cell systems are of interest for a wide range of applications, in part for their utility in power generation from nonfossil-fuel sources. However, the generation of these alternative fuels, through electrochemical means, is a relatively inefficient process due to gas passivation of the electrode surfaces. Uniform microstructured nickel surfaces were prepared by photolithographic techniques as a systematic approach to correlating surface morphologies to their performance in the electrochemically driven oxygen evolution reaction (OER) in alkaline media. Hexagonal arrays of microstructured Ni cylinders were prepared with features of proportional dimensions to the oxygen bubbles generated during the OER process. Recessed and pillared features were investigated relative to planar Ni electrodes for their influence on OER performance and, potentially, bubble release. The arrays of cylindrical recesses were found to exhibit an enhanced OER efficiency relative to planar nickel electrodes. These microstructured electrodes had twice the current density of the planar electrodes at an overpotential of 100 mV. The results of these studies have important implications to guide the preparation of more-efficient fuel generation by water electrolysis and related processes.

摘要

燃料电池系统在广泛的应用中具有吸引力,部分原因是它们可用于从非化石燃料来源发电。然而,这些替代燃料的产生通过电化学手段是一个相对低效的过程,因为电极表面的气体钝化。通过光刻技术制备了均匀的微结构化镍表面,作为将表面形态与其在碱性介质中电化学驱动氧气析出反应(OER)中的性能相关联的系统方法。制备了具有与 OER 过程中产生的氧气气泡成比例尺寸的特征的微结构化 Ni 圆柱的六边形阵列。相对于平面 Ni 电极研究了凹陷和凸起特征对 OER 性能的影响,以及可能对气泡释放的影响。发现圆柱形凹陷阵列相对于平面镍电极表现出增强的 OER 效率。这些微结构化电极在 100 mV 的过电势下具有比平面电极高两倍的电流密度。这些研究结果对指导通过水电解和相关过程制备更高效的燃料生成具有重要意义。

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