Rational design of water splitting electrocatalysts through computational insights

析氧 分解水 合理设计 阴极 制氢 材料科学 电催化剂 纳米技术 化学工程 催化作用 化学 电化学 电极 物理化学 工程类 有机化学 光催化
作者
Mingcheng Zhang,Yu-Chang Hou,Yuzhu Jiang,Xin Ni,Yanfei Wang,Xiaoxin Zou
出处
期刊:Chemical Communications [Royal Society of Chemistry]
卷期号:60 (98): 14521-14536 被引量:13
标识
DOI:10.1039/d4cc05117c
摘要

Electrocatalytic water splitting is vital for the sustainable production of green hydrogen. Electrocatalysts, including those for the hydrogen evolution reaction at the cathode and the oxygen evolution reaction at the anode, are crucial in determining the overall performance of water splitting. Traditional methods for electrocatalyst development often rely on trial-and-error, which can be time-consuming and inefficient. Recent advancements in computational techniques provide more systematic and predictive strategies for catalyst design. This review article explores the role of computational insights in the development of water-splitting electrocatalysts. We start by giving an introduction of electrocatalytic water splitting mechanisms. Then, fundamental theories such as the Sabatier principle and scaling relationships are reviewed, which provide a theoretical basis for catalytic activity. We also discuss thermodynamic, electronic, and geometric descriptors used to guide catalyst design and provide an in-depth discussion of their applications and limitations. Advanced computational approaches, including high-throughput screening, machine learning, solvation models and Ab initio molecular dynamics, are also highlighted for their ability to accelerate catalyst discovery and simulate realistic reaction conditions. Finally, we propose future research directions aimed at searching universal descriptors, expanding data sets, and integrating developing interpretable models with catalyst design.
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