Li Liyao, Lv Ximeng, Xue Yuanyuan, Shao Huibo, Zheng Gengfeng, Han Qing
School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Laboratory of Advanced Materials, Department of Chemistry and Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials Faculty of Chemistry and Materials Science, Fudan University, Shanghai, 200438, China.
Angew Chem Int Ed Engl. 2024 Apr 8;63(15):e202320218. doi: 10.1002/anie.202320218. Epub 2024 Feb 28.
The development of photocatalysts with continuous electron extraction and rapid proton transfer could kinetically accelerate the artificial photosynthesis, but remains a challenge. Herein, we report the topology-guided synthesis of a high-crystalline triazine covalent organic framework (COF) decorated by uniformly distributed polar oxygen functional groups (sulfonic group or carboxyl) as the strong electron/proton extractor for efficient photocatalytic HO production. It was found that the polarity-based proton transfer as well as electron enrichment in as-obtained COFs played a crucial role in improving the HO photosynthesis efficiency (i.e., with an activity order of sulfonic acid- (SOH-COF)>carboxyl- (COOH-COF)>hydrogen- (H-COF) functionalized COFs). The strong polar sulfonic acid group in the high-crystalline SOH-COF triggered a well-oriented built-in electric field and more hydrophilic surface, which serves as an efficient carrier extractor enabling a continuous transportation of the photogenerated electrons and interfacial proton to the active sites (i.e., C atoms linked to -SOH group). As-accelerated proton-coupled electron transfer (PCET), together with the stabilized O adsorption finally leads to the highest HO production rate of 4971 μmol g h under visible light irradiation. Meanwhile, a quantum yield of 15 % at 400 nm is obtained, superior to most reported COF-based photocatalysts.
开发具有连续电子提取和快速质子转移功能的光催化剂可以从动力学上加速人工光合作用,但这仍然是一个挑战。在此,我们报道了一种拓扑引导合成的高结晶三嗪共价有机框架(COF),其由均匀分布的极性氧官能团(磺酸基或羧基)修饰,作为高效光催化产生HO的强电子/质子提取剂。研究发现,所得COF中基于极性的质子转移以及电子富集在提高HO光合作用效率方面起着关键作用(即磺酸基功能化的COF(SOH-COF)>羧基功能化的COF(COOH-COF)>氢功能化的COF(H-COF)的活性顺序)。高结晶SOH-COF中的强极性磺酸基团引发了取向良好的内建电场和更亲水的表面,其作为有效的载流子提取剂,能够使光生电子和界面质子连续传输到活性位点(即与-SOH基团相连的C原子)。加速的质子耦合电子转移(PCET),连同稳定的O吸附,最终在可见光照射下导致最高的HO产生速率为4971 μmol g h。同时,在400 nm处获得了15%的量子产率,优于大多数报道的基于COF的光催化剂。