利用单原子催化剂进行二氧化碳电还原:最新进展综述

EES catalysis Pub Date : 2023-10-13 DOI:10.1039/D3EY00150D
Chang Chen, Jiazhan Li, Xin Tan, Yu Zhang, Yifan Li, Chang He, Zhiyuan Xu, Chao Zhang and Chen Chen
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摘要

电化学二氧化碳还原反应是将二氧化碳转化为有价值的燃料和化学品的有效途径,它为化石燃料资源提供了潜在的替代品,在缓解环境问题和能源危机方面发挥着显著作用。二氧化碳还原反应(CO2RR)的可行性取决于高活性、高选择性和高稳定性催化剂的开发。作为一个新的研究前沿,单原子催化剂(SAC)凭借其独特的几何/电子结构在二氧化碳还原领域展现出了巨大的潜力,同时也为从原子层面理解结构与功能的关系提供了新的机遇。因此,本综述旨在概述用于 CO2RR 的 SAC 的最新进展。我们首先介绍 SACs 的研究现状和一般合成策略,然后重点分析 CO2RR 中 SACs 的各种调控策略,并解读其结构与功能的关系。最后,我们提出了面向 CO2RR 的 SACs 的未来发展方向和机遇,同时也强调了研究过程中可能遇到的挑战。
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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Harnessing single-atom catalysts for CO2 electroreduction: a review of recent advances

Electrochemical CO2 reduction is an effective pathway to convert CO2 into valuable fuels and chemicals, which provides a potential alternative to fossil fuel resources and plays a notable role in mitigating environmental issues and energy crises. The feasibility of the CO2 reduction reaction (CO2RR) hinges on the development of catalysts that feature high activity, selectivity, and stability. As a new research frontier, single-atom catalysts (SACs) have shown immense potential in the field of CO2 reduction by virtue of their unique geometric/electronic structures, and have also provided new opportunities for atomic-level understanding of structure–function relationships. Therefore, this review aims to outline recent advances of SACs for CO2RR. We start by introducing the current research status and general synthesis strategies of SACs, and then shift our focus to analyzing the various regulation strategies and deciphering the structure–function relationships of SACs in the CO2RR. Finally, we propose future directions and opportunities for CO2RR-oriented SACs, while also highlighting potential challenges that may be encountered along the way.

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Back cover Heating dictates the scalability of CO2 electrolyzer types. EES Catalysis: embracing energy and environmental catalysis Carbon incorporated isotype heterojunction of poly(heptazine imide) for efficient visible light photocatalytic hydrogen evolution† Unidirectional bubble transportation on slippery micro-cone array electrodes enables spontaneous 99.99% gas separation in membrane-less water electrolysis†
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