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通过将反应物从水切换为氢氧根离子进行电催化水氧化的机理变化:以氧化铜微球为例

The mechanism change by switching the reactants from water to hydroxyl ions for electrocatalytic water oxidation: a case study of copper oxide microspheres.

作者信息

Du Xiaoqiang, Huang Jingwei, Ding Yong

机构信息

Chemical Engineering and Environment Institute, North University of China, Taiyuan 030051, People's Republic of China.

出版信息

Dalton Trans. 2017 Jun 6;46(22):7327-7331. doi: 10.1039/c7dt01230f.

Abstract

Developing noble metal-free water oxidation catalysts is essential for many energy conversion/storage processes (e.g., water splitting). Herein, we report a facile synthesis of CuO microspheres composed of ultrathin, single-crystal-like nanosheets via a simple solution method. The as-obtained CuO microspheres can serve as an active and stable water oxidation catalyst under electrochemical reaction conditions, owing to their unique structural features. In electrochemical water oxidation, this catalyst affords a current density of 10 mA cm (a value related to practical relevance) at an overpotential of ∼0.48 V. Pure CuO was reported as a water oxidation catalyst (WOC) from near-neutral conditions to alkalescent conditions. Electrochemistry values agree with the Nernstian behavior, suggesting ne/nH transfer prior to a chemical rate-determining step. Our results suggest that the delicate nanostructure can offer unique advantages for developing efficient water oxidation catalysts.

摘要

开发无贵金属的水氧化催化剂对于许多能量转换/存储过程(例如水分解)至关重要。在此,我们报道了一种通过简单的溶液法简便合成由超薄、单晶状纳米片组成的CuO微球的方法。所获得的CuO微球由于其独特的结构特征,在电化学反应条件下可作为活性且稳定的水氧化催化剂。在电化学水氧化中,该催化剂在约0.48 V的过电位下提供10 mA cm的电流密度(与实际相关性相关的值)。据报道,纯CuO在接近中性条件至碱性条件下是一种水氧化催化剂(WOC)。电化学值与能斯特行为一致,表明在化学速率决定步骤之前存在ne/nH转移。我们的结果表明,精细的纳米结构可为开发高效水氧化催化剂提供独特优势。

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