Lin Min, Chen Hui, Zhang Zizhong, Wang Xuxu
State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fuzhou University, Fuzhou, 350106, P. R. China.
Qingyuan Innovation Laboratory, Quanzhou, 362801, P. R. China.
Phys Chem Chem Phys. 2023 Feb 8;25(6):4388-4407. doi: 10.1039/d2cp05281d.
Solar photocatalysis is the most ideal solution to global energy concerns and environmental deterioration nowadays. The heterojunction combination has become one of the most successful and effective strategies to design and manufacture composite photocatalysts. Heterojunction structures are widely documented to markedly improve the photocatalytic behavior of materials by enhancing the separation and transfer of photogenerated charges, widening the light absorption range, and broadening redox potentials, which are attributed to the presence of both build-in electric fields at the interface of two different materials and the complementarity between different electron structures. So far, a large number of heterojunction photocatalytic materials have been reported and applied for water splitting, reduction of carbon dioxide and nitrogen, environmental cleaning, This review outlines the recent accomplishments in the design and modification of interface structures in heterojunction photocatalysts, aiming to provide some useful perspectives for future research in this field.
太阳能光催化是当今解决全球能源问题和环境恶化的最理想方案。异质结复合已成为设计和制造复合光催化剂最成功、最有效的策略之一。大量文献表明,异质结结构可通过增强光生电荷的分离和转移、拓宽光吸收范围以及扩大氧化还原电位来显著改善材料的光催化性能,这归因于两种不同材料界面处的内建电场以及不同电子结构之间的互补性。到目前为止,已有大量异质结光催化材料被报道并应用于水分解、二氧化碳和氮的还原、环境净化等领域。本综述概述了异质结光催化剂界面结构设计和修饰方面的最新成果,旨在为该领域未来的研究提供一些有益的观点。