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用于能量存储和转换的碳负载单原子催化剂的密度泛函理论研究进展

Recent progress of density functional theory studies on carbon-supported single-atom catalysts for energy storage and conversion.

作者信息

Shao Hengjia, Zhong Li, Wu Xingqiao, Wang Yun-Xiao, Smith Sean C, Tan Xin

机构信息

Institute for Carbon Neutralization Technology, College of Chemistry and Materials Engineering, Wenzhou University, Wenzhou, Zhejiang 325035, China.

Institute of Energy Materials Science, University of Shanghai for Science and Technology, Shanghai 200093, China.

出版信息

Chem Commun (Camb). 2025 Jan 30;61(11):2203-2216. doi: 10.1039/d4cc05900j.

Abstract

Single-atom catalysts (SACs) have become the forefront and hotspot in energy storage and conversion research, inheriting the advantages of both homogeneous and heterogeneous catalysts. In particular, carbon-supported SACs (CS-SACs) are excellent candidates for many energy storage and conversion applications, due to their maximum atomic efficiency, unique electronic and coordination structures, and beneficial synergistic effects between active catalytic sites and carbon substrates. In this review, we briefly review the atomic-level regulation strategies for optimizing CS-SACs for energy storage and conversion, including coordination structure control, nonmetallic elemental doping, axial coordination design, and polymetallic active site construction. Then we summarize the recent progress of density functional theory studies on designing CS-SACs by the above strategies for electrocatalysis, such as hydrogen evolution reaction, oxygen evolution reaction, oxygen reduction reaction, CO reduction reaction, nitrogen reduction reaction, and electrosynthesis of urea, and electrochemical energy storage systems such as monovalent metal-sulfur batteries (Li-S and Na-S batteries). Finally, the current challenges and future opportunities in this emerging field are highlighted. This review will provide a helpful guideline for the rational design of the structure and functionality of CS-SACs, and contribute to material optimizations in applications of energy storage and conversion.

摘要

单原子催化剂(SACs)继承了均相催化剂和多相催化剂的优点,已成为储能与转换研究的前沿和热点。特别是,碳负载单原子催化剂(CS-SACs)因其最大的原子效率、独特的电子和配位结构以及活性催化位点与碳载体之间有益的协同效应,成为许多储能与转换应用的理想候选材料。在本综述中,我们简要回顾了用于优化CS-SACs以实现储能与转换的原子级调控策略,包括配位结构控制、非金属元素掺杂、轴向配位设计和多金属活性位点构建。然后,我们总结了通过上述策略设计用于电催化(如析氢反应、析氧反应、氧还原反应、CO还原反应、氮还原反应和尿素电合成)以及电化学储能系统(如单价金属硫电池(锂硫电池和钠硫电池))的CS-SACs的密度泛函理论研究的最新进展。最后,强调了这一新兴领域当前面临的挑战和未来机遇。本综述将为CS-SACs的结构和功能的合理设计提供有益的指导,并有助于储能与转换应用中的材料优化。

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