Shen Rongchen, Qin Chaochao, Hao Lei, Li Xiuzhi, Zhang Peng, Li Xin
Institute of Biomass Engineering, Key Laboratory of Energy Plants Resource and Utilization, Ministry of Agriculture and Rural Affairs, South China Agricultural University, Guangzhou, 510642, China.
Henan Key Laboratory of Infrared Materials and Spectrum Measures and Applications, School of Physics, Henan Normal University, Xinxiang, Henan, 453007, China.
Adv Mater. 2023 Sep;35(39):e2305397. doi: 10.1002/adma.202305397. Epub 2023 Aug 4.
Direct photocatalytic hydrogen and oxygen evolution from water splitting is an attractive approach for producing chemical fuels. In this work, a novel fluorenone-based covalent organic framework (COF-SCAU-2) is successfully exfoliated into ultrathin three-layer nanosheets (UCOF-SCAU-2) for photocatalytic overall water splitting (OWS) under visible light. The ultrathin structures of UCOF-SCAU-2 greatly enhance carrier separation, utilization efficiency, and the exposure of active surface sites. Surprisingly, UCOF-SCAU-2 exhibits efficient photocatalytic OWS performance, with hydrogen and oxygen evolution rates reaching 0.046 and 0.021 mmol h g , respectively, under visible-light irradiation, whereas bulk COF-SCAU-2 shows no activity for photocatalytic OWS. Charge-carrier kinetic analysis and DFT calculations confirm that reducing the thickness of the COF nanosheets increases the number of accessible active sites, reduces the distance for charge migration, prolongs the lifetimes of photogenerated carriers, and decreases the Gibbs free energy of the rate-limiting step compared to nonexfoliated COFs. This work offers new insights into the effect of the layer thickness of COFs on photocatalytic OWS.
通过光催化直接将水分解产生氢气和氧气是一种颇具吸引力的化学燃料生产方法。在这项工作中,一种新型的芴酮基共价有机框架(COF-SCAU-2)成功剥离成超薄三层纳米片(UCOF-SCAU-2),用于在可见光下进行光催化全水分解(OWS)。UCOF-SCAU-2的超薄结构极大地提高了载流子分离、利用效率以及活性表面位点的暴露程度。令人惊讶的是,UCOF-SCAU-2表现出高效的光催化OWS性能,在可见光照射下,氢气和氧气的析出速率分别达到0.046和0.021 mmol h g,而块状COF-SCAU-2对光催化OWS没有活性。电荷载流子动力学分析和密度泛函理论计算证实,与未剥离的COF相比,减小COF纳米片的厚度会增加可及活性位点的数量,缩短电荷迁移距离,延长光生载流子的寿命,并降低限速步骤的吉布斯自由能。这项工作为COF的层厚度对光催化OWS的影响提供了新的见解。