Design strategies of ruthenium-based materials toward alkaline hydrogen evolution reaction

EcoEnergy Pub Date : 2023-10-10 DOI:10.1002/ece2.4
Liqiang Hou, Haeseong Jang, Xiumin Gu, Xuemei Cui, Jiachen Tang, Jaephil Cho, Xien Liu
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引用次数: 1

Abstract

Hydrogen produced from electrocatalytic water splitting means is deemed to be a promising route to construct a low-carbon, eco-friendly, and high-efficiency modern energy system. The design and construction of highly active catalysts with affordable prices toward alkaline hydrogen evolution reaction (HER) are effective in accelerating the overall water-splitting process. So far, ruthenium (Ru) based catalysts deliver comparable or even superior catalytic performance relative to the platinum (Pt)/C benchmark. Combined with their price advantage, Ru-based catalysts are undoubtedly considered as one of the perfect alternatives of Pt toward the alkaline HER. Extensive efforts have been made to reasonably synthesize Ru-related materials, but a careful insight into material engineering strategies and induced effects remain in its infancy. In this review, recent progress on the material engineering strategies for improving the catalytic activity of Ru-related catalysts, including electronic regulation, geometric modulation, local structure alteration, self-optimization strategies, and the induced structure–activity relationship are comprehensively summarized. Furthermore, the challenges and perspectives on future studies of Ru-related electrocatalysts for the alkaline HER are also proposed.

Abstract Image

钌基材料对碱性析氢反应的设计策略
电催化水裂解制氢被认为是构建低碳、环保、高效的现代能源体系的一条很有前途的途径。设计和构建价格合理的碱性析氢反应高活性催化剂是加速整个水裂解过程的有效手段。到目前为止,钌(Ru)基催化剂的催化性能与铂(Pt)/C基准相当,甚至更好。结合其价格优势,钌基催化剂无疑被认为是Pt替代碱性HER的理想选择之一。在合理合成钌相关材料方面已经做了大量的努力,但对材料工程策略和诱导效应的仔细洞察仍处于起步阶段。本文综述了近年来提高钌相关催化剂催化活性的材料工程策略,包括电子调控、几何调制、局部结构改变、自优化策略和诱导构效关系等方面的研究进展。最后,对碱性HER中钌相关电催化剂的研究提出了挑战和展望。
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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