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3d过渡金属掺杂诱导电荷重排与转移以增强NiS(101)晶面上的整体水分解:第一性原理计算研究

3d Transition metal doping induced charge rearrangement and transfer to enhance overall water-splitting on NiS (101) facet: a first-principles calculation study.

作者信息

Zhang Minghao, Shao Xiaodong, Liu Lu, Xu Xiaoyong, Pan Jing, Hu Jingguo

机构信息

College of Physics Science and Technology, Yangzhou University Yangzhou 225002 China

出版信息

RSC Adv. 2022 Sep 21;12(41):26866-26874. doi: 10.1039/d2ra04252e. eCollection 2022 Sep 16.

Abstract

Cost-efficient bifunctional electrocatalysts with good stability and high activity are in great demand to replace noble-metal-based catalysts for overall water-splitting. NiS has been considered a suitable electrocatalyst for either the hydrogen evolution reaction (HER) or the oxygen evolution reaction (OER) owing to its good conductivity and stability, but high performance remains a challenge. Based on density functional theory calculations, we propose a practical 3d-transition-metal (TM = Mn, Fe and Co) doping to enhance the catalytic performance for both HER and OER on the NiS (101) facet. The enhancement originates from TM-doping-induced charge rearrangement and charge transfer, which increases the surface activity and promotes catalytic behavior. In particular, Mn-doped NiS shows good bifunctional catalytic activity because it possesses more active sites, reduced hydrogen adsorption free energy (Δ ) for HER and low overpotential for OER. Importantly, this work not only provides a feasible means to design efficient bifunctional electrocatalysts for overall water-splitting but also provides insights into the mechanism of improving catalytic behavior.

摘要

为了替代用于全水解的贵金属基催化剂,人们迫切需要具有良好稳定性和高活性的经济高效双功能电催化剂。由于具有良好的导电性和稳定性,硫化镍被认为是析氢反应(HER)或析氧反应(OER)的合适电催化剂,但高性能仍然是一个挑战。基于密度泛函理论计算,我们提出了一种实用的3d过渡金属(TM = Mn、Fe和Co)掺杂方法,以提高硫化镍(101)晶面上HER和OER的催化性能。这种增强源于TM掺杂引起的电荷重排和电荷转移,这增加了表面活性并促进了催化行为。特别是,Mn掺杂的硫化镍表现出良好的双功能催化活性,因为它具有更多的活性位点、降低的HER氢吸附自由能(Δ )和较低的OER过电位。重要的是,这项工作不仅为设计用于全水解的高效双功能电催化剂提供了一种可行的方法,还为改善催化行为的机制提供了见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f6e/9490779/af192a596952/d2ra04252e-f1.jpg

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