Mini review on electron mediator in artificial photosynthesis: Design, fabrication, and perspectives based on energy level matching

Zhengzheng Xie , Qiang Gao , Xiaohong Shang , Xianwei Fu , Jianjun Yang , Yaping Yan , Qiuye Li
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Abstract

Photocatalysis based on artificial photosynthesis is an effective method for addressing the current energy crisis and environmental issues. During photocatalysis, the charge transfer between the photocatalytic reduction and oxidation reactions constitutes the rate-limiting step of the entire Z-scheme photocatalytic system. The primary factors in building a highly efficient photogenerated charge-transfer interface include the design and fabrication of appropriate solid electron mediators. These factors are crucial for improving the performance of artificial photosynthesis systems, which include overall water splitting, hydrogen evolution, CO2 photocatalytic reduction and pollutant degradation. Herein, we review the current literature on solid electron, including (noble) metals, metal oxides/sulfides, and carbon-based materials, in artificial photosynthesis, analyze the advantages and disadvantages of various electron mediators, and summarize the properties of electron mediators that facilitate the rapid separation of photogenerated charges. Moreover, we provide further perspectives for the energy level matching of the interface between electron mediators and catalysts in artificial photosynthesis based on work function regulation.
人工光合作用中电子介质的研究综述:设计、制造及基于能级匹配的展望
以人工光合作用为基础的光催化是解决当前能源危机和环境问题的有效方法。在光催化过程中,光催化还原和氧化反应之间的电荷转移构成了整个Z-scheme光催化体系的限速步骤。建立一个高效的光生电荷转移界面的主要因素包括设计和制造适当的固体电子介质。这些因素对于提高人工光合作用系统的性能至关重要,包括整体水分解、析氢、CO2光催化还原和污染物降解。本文综述了固体电子(包括贵金属、金属氧化物/硫化物和碳基材料)在人工光合作用中的研究现状,分析了各种电子介质的优缺点,总结了促进光生电荷快速分离的电子介质的特性。此外,我们还对基于功函数调节的人工光合作用中电子介质与催化剂界面的能级匹配提供了进一步的展望。
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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