Inorganic Chemistry Department, Módulo 7, Universidad Autónoma de Madrid, Madrid, 28049, Spain.
Department of Chemistry, Faculty of Sciences, University of Zabol, Zabol, 98615-538, Iran.
Adv Mater. 2023 Jun;35(24):e2209475. doi: 10.1002/adma.202209475. Epub 2023 Apr 11.
Organic photochemistry is intensely developed in the 1980s, in which the nature of excited electronic states and the energy and electron transfer processes are thoroughly studied and finally well-understood. This knowledge from molecular organic photochemistry can be transferred to the design of covalent organic frameworks (COFs) as active visible-light photocatalysts. COFs constitute a new class of crystalline porous materials with substantial application potentials. Featured with outstanding structural tunability, large porosity, high surface area, excellent stability, and unique photoelectronic properties, COFs are studied as potential candidates in various research areas (e.g., photocatalysis). This review aims to provide the state-of-the-art insights into the design of COF photocatalysts (pristine, functionalized, and hybrid COFs) for organic transformations. The catalytic reaction mechanism of COF-based photocatalysts and the influence of dimensionality and crystallinity on heterogenous photocatalysis performance are also discussed, followed by perspectives and prospects on the main challenges and opportunities in future research of COFs and COF-based photocatalysts.
有机光化学在 20 世纪 80 年代得到了深入发展,其中激发态电子性质以及能量和电子转移过程得到了彻底研究并最终得到了很好的理解。这些来自分子有机光化学的知识可以被转移到共价有机骨架(COF)作为可见光光催化剂的设计中。COF 构成了一类新型的结晶多孔材料,具有很大的应用潜力。COF 具有出色的结构可调性、大孔容、高比表面积、优异的稳定性和独特的光电性能,被研究作为各种研究领域(例如,光催化)的潜在候选材料。本综述旨在提供 COF 光催化剂(原始、功能化和混合 COF)用于有机转化的最新设计见解。还讨论了基于 COF 的光催化剂的催化反应机制以及维度和结晶度对多相光催化性能的影响,随后对 COF 和基于 COF 的光催化剂的未来研究中的主要挑战和机遇进行了展望。