通过调整镍基电催化剂的电极-电解质界面来增强析氧反应。

IF 5.9 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Ben Wang, Tomohiro Fukushima, Hiro Minamimoto, Andrey Lyalin, Kei Murakoshi, Tetsuya Taketsugu
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引用次数: 0

摘要

由于界面过程的复杂性和多面性,要全面了解能量转换系统中的电极-电解质界面仍然具有挑战性。这种复杂性阻碍了更高效电催化剂的开发。在这项工作中,我们提出了一种混合方法,以碱性介质中的镍-铁基氧氢氧化物(γ-Ni1-xFexOOH)电极为模型系统,对 OER 过程进行理论描述。通过一种简单可行的计算策略,考虑催化剂的实际结构、掺杂和溶解效应,研究了以单位和双位机理为代表的多种反应途径。考虑到可变的溶解效应会对预测的过电位产生很大影响,过电位与介电常数之间大致呈线性关系。通过将量子化学模拟与动力学建模相结合,我们证明了调整局部溶解环境可以显著提高氧化还原活性,为阐明过渡金属氧化物表面氧化还原过程的新问题以及设计具有成本效益的高效电催化系统开辟了新的常规途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the oxygen evolution reaction by tuning the electrode-electrolyte interface in nickel-based electrocatalysts.

A comprehensive understanding of the electrode-electrolyte interface in energy conversion systems remains challenging due to the complex and multifaceted nature of interfacial processes. This complexity hinders the development of more efficient electrocatalysts. In this work, we propose a hybrid approach to the theoretical description of the OER process on nickel-iron-based oxyhydroxides (γ-Ni1-xFexOOH) electrodes in alkaline media as a model system. Multiple reaction pathways represented by the single- and dual-site mechanisms were investigated by taking into account the realistic structure of the catalyst, the doping, and the solvation effects using a simple and computationally feasible strategy. Accounting for the variable solvation effects considerably affects the predicted overpotential in a roughly linear relationship between overpotential and dielectric constant. By incorporating quantum chemical simulations with kinetic modeling, we demonstrate that tuning the local solvation environment can significantly enhance the OER activity, opening new routine ways for elucidation of the emerging issues of OER processes on transition metal oxide surfaces and design of cost-effective, efficient electrocatalytic systems.

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来源期刊
Communications Chemistry
Communications Chemistry Chemistry-General Chemistry
CiteScore
7.70
自引率
1.70%
发文量
146
审稿时长
13 weeks
期刊介绍: Communications Chemistry is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the chemical sciences. Research papers published by the journal represent significant advances bringing new chemical insight to a specialized area of research. We also aim to provide a community forum for issues of importance to all chemists, regardless of sub-discipline.
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