Chen Pei, Yan Minjia, Shi Jiayu, Feng Mengxuan, Li Qiong, Chen Hanzhi, Xie Yinghui, Lei Jiehong, Wakeel Muhammad, Hu Baowei, Wang Xiangke
College of Environmental Science and Engineering, North China Electric Power University, Beijing, 102206, P. R. China.
School of Life and Environmental Sciences, Shaoxing University, Shaoxing, 312000, P. R. China.
Chemistry. 2025 May 19;31(28):e202500305. doi: 10.1002/chem.202500305. Epub 2025 Mar 25.
Photocatalytic technology has attracted considerable attention in recent years due to its significant potential in environmental protection and energy conversion. Covalent organic frameworks (COFs), a novel class of porous materials, demonstrate remarkable photocatalytic performance owing to their high surface areas, tunable pore sizes, permanent porosities, and customizable functionalities. This review provides a comprehensive overview of the application of COFs in photocatalysis. In energy-related applications, COFs effectively catalyze hydrogen (H) and hydrogen peroxide (HO) generation, and uranium (U(VI)) extraction from seawater, thereby offering new avenues for sustainable energy generation. In environmental remediation, COFs exploit photocatalytic properties to reduce carbon dioxide (CO) emissions and degrade antibiotics in wastewater, thereby contributing to greenhouse gas mitigation and the enhancement of water quality. The review further explores the underlying mechanisms of COFs in photocatalytic H and HO generation, U(VI) reduction, CO reduction, and antibiotic degradation, emphasizing the pivotal role of the COF structure in governing photocatalytic performance. Nevertheless, challenges persist concerning the stability, catalytic efficiency, and scalability of COFs. Future research should prioritize optimizing synthesis methods, tuning structural features, and enhancing the stability and performance of COFs to facilitate their practical applications. These advancements are crucial for promoting the widespread adoption of photocatalytic technologies in the energy and environmental sectors.
近年来,光催化技术因其在环境保护和能量转换方面的巨大潜力而备受关注。共价有机框架(COFs)作为一类新型多孔材料,因其高比表面积、可调孔径、永久孔隙率和可定制功能而展现出卓越的光催化性能。本文综述全面概述了COFs在光催化中的应用。在与能源相关的应用中,COFs有效地催化氢气(H)和过氧化氢(HO)的生成以及从海水中提取铀(U(VI)),从而为可持续能源生产提供了新途径。在环境修复方面,COFs利用光催化特性减少二氧化碳(CO)排放并降解废水中的抗生素,从而有助于缓解温室气体排放并提高水质。该综述进一步探讨了COFs在光催化生成H和HO、还原U(VI)、还原CO以及降解抗生素过程中的潜在机制,强调了COF结构在决定光催化性能方面的关键作用。然而,COFs在稳定性、催化效率和可扩展性方面仍然存在挑战。未来的研究应优先优化合成方法、调整结构特征并提高COFs的稳定性和性能,以促进其实际应用。这些进展对于推动光催化技术在能源和环境领域的广泛应用至关重要。