Recent Progress of Studies on Photoconversion and Photothermal Conversion of CO2 with Single-Atom Catalysts

Guoxiang Yang*, Qi Wang, Yasutaka Kuwahara, Kohsuke Mori and Hiromi Yamashita*, 
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Abstract

Catalytic conversion of carbon dioxide (CO2) into useful chemical raw materials or fuels can help achieve the “dual carbon” goals of carbon peaking and carbon neutrality. As a sustainable green energy source, solar energy provides energy for human production and life. In recent years, the reported single-atom catalysts (SACs) have higher atom utilization and better catalytic efficiency than traditional heterogeneous catalysts. In the field of photocatalysis and photothermal synergistic catalysis of CO2 conversion, single-atom catalysts can reduce the reaction temperature and pressure, improve the catalytic activity, and improve the selectivity of the reaction. In this mini-review, the basic mechanism and classification of CO2 reduction are introduced, and then the roles and differences of single-atom catalysts in photocatalysis and photothermal catalysis are introduced. In addition, according to the reduction product types, the recent research progress of single-atom catalysts in photoconversion and photothermal CO2 conversion was reviewed. Finally, the challenges of monoatomic photocatalytic and photothermal CO2 reduction technologies have prospected. This mini-review hopes to provide an in-depth understanding of the roles of single atoms in photocatalysis and photothermal catalysis and to shed light on the actual production and application of renewable energy. High-performance single-atom catalysts are expected to achieve industrial applications of CO2 conversion, which will contribute to the early realization of the two-carbon goal.

Abstract Image

利用单原子催化剂进行二氧化碳光电转换和光热转换的最新研究进展
将二氧化碳(CO2)催化转化为有用的化学原料或燃料,有助于实现碳峰值和碳中和的 "双碳 "目标。太阳能作为一种可持续的绿色能源,为人类的生产和生活提供了能源。近年来报道的单原子催化剂(SACs)与传统的异相催化剂相比,具有更高的原子利用率和更好的催化效率。在二氧化碳转化的光催化和光热协同催化领域,单原子催化剂可以降低反应温度和压力,提高催化活性,改善反应的选择性。在这篇微型综述中,首先介绍了二氧化碳还原的基本机理和分类,然后介绍了单原子催化剂在光催化和光热催化中的作用和区别。此外,根据还原产物类型,综述了单原子催化剂在光催化和光热催化 CO2 转化中的最新研究进展。最后,展望了单原子光催化和光热二氧化碳还原技术所面临的挑战。这篇微型综述希望让人们深入了解单原子在光催化和光热催化中的作用,并为可再生能源的实际生产和应用提供启示。高性能的单原子催化剂有望实现二氧化碳转化的工业应用,为早日实现两碳目标做出贡献。
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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