Doped Nickel-Based Nanocatalysts for Electrochemical Water Splitting: A Review

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Divya Rathore, , , Anakshi Boruah, , and , Surojit Pande*, 
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Abstract

The growing demand for clean energy solutions to address fossil fuel depletion and global warming has increased the pace for the search for sustainable alternatives. To address this situation, hydrogen energy is emerging as a promising method due to its zero pollution and high energy density. Electrocatalytic water splitting is a promising technology for large-scale hydrogen production. Generally, electrocatalysts work well for either the HER or the OER, but not both. Developing catalysts that can be efficiently used for overall water splitting is necessary for commercial viability. Nickel-based materials, specifically when doped with metals (e.g., Fe, Co, W, Cu, Ru, and Ir) and nonmetals (e.g., C, F, and P), have shown great potential because of their versatile chemical properties, corrosion resistance, and structural stability. This review provides a comprehensive overview of recent advancements in doped nickel-based electrocatalysts, which focuses on nickel oxides, chalcogenides, phosphides, nitrides, and single-atom catalysts (SACs). It discusses fundamental mechanisms of HER and OER, strategies for enhancing electrocatalytic performance through doping, defect engineering, and electronic structure modulation. It also discusses the effect of nonmetal and metal doping on activity and stability. The review also emphasizes the importance of systematic experimental approaches like doping ratios, accurate surface area corrections, and operando methods to better understand the relationship between electronic structure and electrocatalytic performance. It also highlights the research gaps and the future directions that aim to advance the design of efficient, stable, and cost-effective nickel-based electrocatalysts, which can contribute to the development of sustainable hydrogen energy production.

掺杂镍基纳米催化剂的电化学水分解研究进展
为解决化石燃料枯竭和全球变暖问题,对清洁能源解决方案的需求日益增长,这加快了寻找可持续替代能源的步伐。为了解决这一问题,氢能源因其零污染和高能量密度而成为一种有前途的方法。电催化水裂解是一种很有前途的大规模制氢技术。一般来说,电催化剂对HER或OER中的一种都有效,但不能两者都有效。开发能够有效地用于整体水分解的催化剂对于商业可行性是必要的。镍基材料,特别是当掺杂金属(如Fe, Co, W, Cu, Ru和Ir)和非金属(如C, F和P)时,由于其多种化学性质,耐腐蚀性和结构稳定性而显示出巨大的潜力。本文综述了近年来掺杂镍基电催化剂的研究进展,主要包括镍氧化物、硫族化合物、磷化物、氮化物和单原子催化剂。讨论了HER和OER的基本机制,通过掺杂、缺陷工程和电子结构调制来提高电催化性能的策略。讨论了非金属和金属掺杂对活性和稳定性的影响。综述还强调了系统实验方法的重要性,如掺杂比、精确的表面积修正和operando方法,以更好地理解电子结构和电催化性能之间的关系。强调了研究空白和未来发展方向,旨在推进高效、稳定、经济的镍基电催化剂的设计,为可持续氢能生产的发展做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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