用于硫还原/析硫反应的MOF相关电催化剂:组成调制、结构设计和机理研究

IF 42.9 Q1 ELECTROCHEMISTRY eScience Pub Date : 2023-10-01 DOI:10.1016/j.esci.2023.100107
Zhengqing Ye , Ying Jiang , Li Li , Feng Wu , Renjie Chen
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引用次数: 3

摘要

电催化硫还原反应(SRR)和析硫反应(SER)是锂硫电池(LSBs)中两个基本的多步转化过程,是克服缓慢氧化还原动力学和多硫化物穿梭效应的根本原因解决方案。金属-有机框架(MOF)电催化剂已成为催化SRR和SER的良好平台,但其催化性能受到导电性差和化学稳定性有限的挑战。官能化MOFs及其杂化物可能有利于稳定和改善所需的催化性能,以实现高性能LSB。这篇综述详细概述了通过成分调制、纳米结构设计以及混合组装来提高MOF相关电催化剂的活性、选择性和稳定性的工程原理。它介绍并讨论了通过使用原位表征技术、模拟和理论计算来揭示MOF相关电催化剂的动态演变所取得的各种进展,从而能够在分子/原子水平上深入了解催化机制。最后,展望了MOF相关硫电催化剂的发展前景和可能的研究方向。
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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MOF-related electrocatalysts for sulfur reduction/evolution reactions: Composition modulation, structure design, and mechanism research

The electrocatalytic sulfur reduction reaction (SRR) and sulfur evolution reaction (SER), two fundamental multistep conversion processes in lithium–sulfur batteries (LSBs), are root-cause solutions to overcome sluggish redox kinetics and the polysulfide shuttling effect. Metal–organic framework (MOF) electrocatalysts have emerged as good platforms for catalyzing SRR and SER, but their catalytic performance is challenged by poor electrical conductivity and limited chemical stability. Functionalized MOFs and their hybrids may be beneficial for stabilizing and improving the desired catalytic properties to achieve high-performance LSBs. This review provides a detailed overview of engineering principles for improving the activity, selectivity, and stability of MOF-related electrocatalysts via composition modulation and nanostructure design as well as hybrid assembly. It presents and discusses the various advances achieved by using in situ characterization techniques, simulations, and theoretical calculations to reveal the dynamic evolution of MOF-related electrocatalysts, enabling an in-depth understanding of the catalysis mechanism at the molecular/atomic level. Lastly, prospects and possible research directions for MOF-related sulfur electrocatalysts are proposed.

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