分解水
光催化
共价键
光催化分解水
材料科学
纳米技术
氧化还原
带隙
化学物理
重组
能量转换
密度泛函理论
科技与社会
合理设计
化学
可见光谱
光电化学
类型(生物学)
光电子学
设计要素和原则
三嗪
宽禁带半导体
电子迁移率
化学工程
半导体
清洁能源
光化学
作者
Cong Wang,Yangguang Li,Zhong‐Min Su,Huaqiao Tan
出处
期刊:Langmuir
[American Chemical Society]
日期:2025-12-02
卷期号:41 (49): 33609-33617
被引量:1
标识
DOI:10.1021/acs.langmuir.5c05358
摘要
Developing photocatalytically competent and stable covalent-organic frameworks with integrated redox centers remains challenging. Herein, we design 12 experimentally feasible donor-acceptor (D-A) type two-dimensional (2D) covalent triazine/heptazine-based framework (CTFs/CHFs) by linking electron-deficient triazine/heptazine moieties with electron-rich benzoheterocyclic units, and systematically explore their photocatalytic properties toward overall water splitting (OWS) via first-principles computations. The present computational estimates show that these frameworks exhibit semiconducting behavior with tunable bandgaps (2.10-2.88 eV). A detailed analysis of the band gaps, band alignments, and the thermodynamic feasibility of the HER and OER reveals that only CTF-5 (incorporating triazine and benzotrioxazole) and CHF-5 (featuring heptazine and benzotrioxazole) are thermodynamically capable of spontaneously driving OWS under their respective light-induced bias potentials. As predicted, the HER and OER active sites exhibit complete spatial separation, where the HER preferentially occurs predominantly on the triazine/heptazine moieties, while the OER takes place at the benzotrioxazole units. This separation helps reduce the electron-hole recombination and enhances the overall photocatalytic efficiency, which has been verified by carrier mobility calculations. As a result, the theoretical energy conversion efficiencies of CTF-5 and CHF-5 reach 10.3% and 15.8%, respectively, with CHF-5 outperforming not only CTF-5 but also several previously reported COFs. These findings pave the way for designing eco-friendly D-A type photocatalysts for OWS and provide valuable insights for future experimental research.
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