光催化
材料科学
氮化碳
氢
氮化物
氮气
化学工程
碳纤维
纳米技术
载流子
石墨氮化碳
吸收(声学)
制氢
带隙
电荷(物理)
电子转移
降级(电信)
化学物理
光催化分解水
工作(物理)
光化学
分解水
电子
有效核电荷
氢燃料
可见光谱
表面工程
电子结构
宽禁带半导体
作者
Zeyi Zhang,Han Zhao,Lingshen Meng,Yu Wang,Fei Guo,Carlos A. Triana,Yonggui Zhao,Jingguo Li,Xiaoyuan Liu,Greta R. Patzke
出处
期刊:Small
[Wiley]
日期:2026-08-21
卷期号:: e75195-e75195
摘要
ABSTRACT Polymeric carbon nitride (g‐C 3 N 4 , GCN) is a highly promising metal‐free photocatalyst for solar hydrogen production. However, its activity is still constrained by insufficient visible‐light absorption and poor interlayer charge transport. Defect engineering of GCN has been widely deployed to promote photocatalytic hydrogen evolution efficiency, but a significant knowledge gap persists in linking specific defect structures to performance outcomes, and underlying mechanisms remain inadequately explored. Herein, we propose a controllable nitrogen‐vacancy engineering strategy for GCN that induces interlayer contraction, thereby promoting interfacial charge transport. The tailored nitrogen vacancies broaden optical absorption, enhance interlayer electronic coupling, suppress charge carrier recombination, and lower the out‐of‐plane charge‐transfer barrier. Consequently, the optimized photocatalyst exhibits a ∼ 23‐fold enhancement in the hydrogen evolution rate compared to pristine GCN, while maintaining excellent stability over 50 h of continuous illumination. This work establishes a viable regulation strategy of nitrogen vacancies for advancing g‐C 3 N 4 ‐based photocatalysts toward large‐scale solar hydrogen production.
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