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用于太阳能转换的二维光催化剂的表面改性

Surface Modification of 2D Photocatalysts for Solar Energy Conversion.

作者信息

Feng Chengyang, Wu Zhi-Peng, Huang Kuo-Wei, Ye Jinhua, Zhang Huabin

机构信息

Chemical Science Program, Physical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.

KAUST Catalysis Center (KCC), King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.

出版信息

Adv Mater. 2022 Jun;34(23):e2200180. doi: 10.1002/adma.202200180. Epub 2022 Apr 3.

Abstract

2D materials show many particular properties, such as high surface-to-volume ratio, high anisotropic degree, and adjustable chemical functionality. These unique properties in 2D materials have sparked immense interest due to their applications in photocatalytic systems, resulting in significantly enhanced light capture, charge-transfer kinetics, and surface reaction. Herein, the research progress in 2D photocatalysts based on varied compositions and functions, followed by specific surface modification strategies, is introduced. Fundamental principles focusing on light harvesting, charge separation, and molecular adsorption/activation in the 2D-material-based photocatalytic system are systemically explored. The examples described here detail the use of 2D materials in various photocatalytic energy-conversion systems, including water splitting, carbon dioxide reduction, nitrogen fixation, hydrogen peroxide production, and organic synthesis. Finally, by elaborating the challenges and possible solutions for developing these 2D materials, the review is expected to provide some inspiration for the future research of 2D materials used on efficient photocatalytic energy conversions.

摘要

二维材料展现出许多特殊性质,例如高的比表面积、高各向异性程度以及可调节的化学官能团。二维材料中的这些独特性质因其在光催化体系中的应用而引发了极大的兴趣,从而显著增强了光捕获、电荷转移动力学以及表面反应。在此,介绍了基于不同组成和功能的二维光催化剂的研究进展,以及具体的表面改性策略。系统地探索了基于二维材料的光催化体系中光捕获、电荷分离以及分子吸附/活化的基本原理。此处描述的实例详细说明了二维材料在各种光催化能量转换体系中的应用,包括水分解、二氧化碳还原、固氮、过氧化氢生成以及有机合成。最后,通过阐述开发这些二维材料所面临的挑战和可能的解决方案,期望本综述能为二维材料用于高效光催化能量转换的未来研究提供一些启发。

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