材料科学
异质结
系统间交叉
石墨氮化碳
半导体
光催化
氮化碳
光电子学
载流子
单线态氧
有机半导体
电场
电荷(物理)
选择性
光化学
共价键
氮化物
量子效率
纳米技术
有效核电荷
动力学
碳纤维
摩擦电效应
化学工程
共价有机骨架
宽禁带半导体
化学物理
作者
Kai Meng,Jianjun Zhang,J Zhang,Zhifeng Jiang,Jiaguo Yu,Chuanbiao Bie,Bei Cheng
摘要
Efficient singlet-oxygen-assisted photocatalytic oxidation requires both effective charge separation and well-controlled excited-state pathways, yet achieving both remains challenging in organic semiconductor heterojunctions. Herein, a Cu single-atom-engineered S-scheme heterojunction is developed by coupling Cu-modified graphitic carbon nitride (Cu─CN) with an imine-linked covalent organic framework (PyBT). The atomically dispersed Cu sites induce pronounced interfacial charge localization, strengthen the internal electric field (IEF), and accelerate directional charge transfer across the heterojunction. Quantitative analysis shows that the IEF intensity of Cu─CN/PyBT is enhanced to 1.97 times that of its Cu-free counterpart, enabling markedly improved spatial separation of photogenerated carriers. More importantly, the enhanced charge separation promotes intersystem crossing and boosts singlet oxygen generation. Consequently, the optimized heterojunction achieves 94.2% styrene conversion with 79.2% benzaldehyde selectivity under simulated sunlight. This work provides a feasible strategy for strengthening charge-transfer kinetics while activating singlet-oxygen chemistry in organic semiconductor heterojunction photocatalysts.
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