Li Zhenping, Jiao Junqiang, Fu Wenlong, Gao Ke, Peng Xinyuan, Wang Zhiwei, Zhuo Huagui, Yang Chao, Yang Mingyu, Chang Gang, Yang Lei, Zheng Xinglong, Yan Yang, Chen Feng, Zhang Mingming, Meng Zheng, Shang Xiaobo
State Key Laboratory for Mechanical Behavior of Materials, Shaanxi International Research Center for Soft Matter, School of Materials Science and Engineering, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
Key Laboratory of Precision and Intelligent Chemistry, Department of Chemistry, University of Science and Technology of China, Hefei, 230026, P. R. China.
Angew Chem Int Ed Engl. 2024 Nov 11;63(46):e202412977. doi: 10.1002/anie.202412977. Epub 2024 Sep 17.
Perylene diimides (PDIs) have garnered considerable attention due to their immense potential in photocatalysis. However, manipulating the molecular packing within their aggregates and enhancing the efficiency of photogenerated carrier recombination remain significant challenges. In this study, we demonstrate the incorporation of a PDI unit into a covalent organic framework (COF), named PDI-PDA, by linking an ortho-substituted PDI with p-phenylenediamine (PDA) to control its intermolecular aggregation. The incorporation enables precise modulation of electron-transfer dynamics, leading to a ten-fold increase in the efficiency of photocatalytic oxidation of thioether to sulfoxide with PDI-PDA compared to the PDI molecular counterpart, with yields exceeding 90 %. Electron property studies and density functional theory calculations show that the PDI-PDA with its well-defined crystal structure, enhances π-π stacking and lowers the electron transition barrier. Moreover, the strong electron-withdrawing ability of the PDI unit promotes the spatial separation of the valency band maximum and conduction band minimum of PDI-PDA, suppressing the rapid recombination of photogenerated electron-hole pairs and improving the charge-separation efficiency to give high photocatalytic efficiency. This study provides a brief but effective way for improving the photocatalytic efficiency of commonly used PDI-based dyes by integrating them into a framework skeleton.
苝二亚胺(PDIs)因其在光催化方面的巨大潜力而备受关注。然而,控制其聚集体内部分子堆积以及提高光生载流子复合效率仍然是重大挑战。在本研究中,我们通过将邻位取代的苝二亚胺与对苯二胺(PDA)相连,将苝二亚胺单元引入共价有机框架(COF)中,命名为PDI-PDA,以控制其分子间聚集。这种引入使得电子转移动力学能够得到精确调控,与苝二亚胺分子相比,PDI-PDA催化硫醚光氧化为亚砜的效率提高了十倍,产率超过90%。电子性质研究和密度泛函理论计算表明,具有明确晶体结构的PDI-PDA增强了π-π堆积并降低了电子跃迁势垒。此外,苝二亚胺单元的强吸电子能力促进了PDI-PDA价带最大值和导带最小值的空间分离,抑制了光生电子-空穴对的快速复合,提高了电荷分离效率,从而实现了高光催化效率。本研究为通过将常用的基于苝二亚胺的染料整合到框架骨架中来提高其光催化效率提供了一种简便而有效的方法。