Wang Lingsong, Zhu Weigang
Key Laboratory of Organic Integrated Circuits, Ministry of Education, Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Department of Chemistry, School of Science, Tianjin University, Tianjin, 300072, China.
Adv Sci (Weinh). 2024 Mar;11(10):e2307227. doi: 10.1002/advs.202307227. Epub 2023 Dec 25.
Organic semiconductor materials are considered to be promising photocatalysts due to their excellent light absorption by chromophores, easy molecular structure tuning, and solution-processable properties. In particular, donor-acceptor (D-A) type organic photocatalytic materials synthesized by introducing D and A units intra- or intermolecularly, have made great progress in photocatalytic studies. More and more studies have demonstrated that the D-A type organic photocatalytic materials combine effective carrier separation, tunable bandgap, and sensitive optoelectronic response, and are considered to be an effective strategy for enhancing light absorption, improving exciton dissociation, and optimizing carrier transport. This review provides a thorough overview of D-A strategies aimed at optimizing the photocatalytic performance of organic semiconductors. Initially, essential methods for modifying organic photocatalytic materials, such as interface engineering, crystal engineering, and interaction modulation, are briefly discussed. Subsequently, the review delves into various organic photocatalytic materials based on intramolecular and intermolecular D-A interactions, encompassing small molecules, conjugated polymers, crystalline polymers, supramolecules, and organic heterojunctions. Meanwhile, the energy band structures, exciton dynamics, and redox-active sites of D-A type organic photocatalytic materials under different bonding modes are discussed. Finally, the review highlights the advanced applications of organic photocatalystsand outlines prospective challenges and opportunities.
有机半导体材料因其发色团具有出色的光吸收性能、易于调节的分子结构以及可溶液加工的特性,被认为是很有前景的光催化剂。特别是通过分子内或分子间引入给体(D)和受体(A)单元合成的供体-受体(D-A)型有机光催化材料,在光催化研究方面取得了很大进展。越来越多的研究表明,D-A型有机光催化材料兼具有效的载流子分离、可调节的带隙和灵敏的光电响应,被认为是增强光吸收、改善激子解离和优化载流子传输的有效策略。本综述全面概述了旨在优化有机半导体光催化性能的D-A策略。首先,简要讨论了修饰有机光催化材料的基本方法,如界面工程、晶体工程和相互作用调制。随后,本综述深入探讨了基于分子内和分子间D-A相互作用的各种有机光催化材料,包括小分子、共轭聚合物、结晶聚合物、超分子和有机异质结。同时,还讨论了不同键合模式下D-A型有机光催化材料的能带结构、激子动力学和氧化还原活性位点。最后,本综述重点介绍了有机光催化剂的先进应用,并概述了未来的挑战和机遇。