光催化
异质结
化学
催化作用
兴奋剂
亚甲蓝
X射线光电子能谱
光化学
氧气
降级(电信)
载流子
带隙
可见光谱
半导体
化学工程
碳纤维
析氧
无机化学
单线态氧
活性炭
活性氧
作者
Hui Bai,Guyu Zhang,Fengqin Tang,Lili Huang,Mingxia Tian,Libing Hu,Zheng‐Hang Qi,Jianhui Jiang
摘要
ABSTRACT Developing porous‐structured organic semiconductor photocatalysts with high charge transfer efficiency is crucial for solar energy utilization, yet remains challenging in pollutant remediation. Herein, an S‐scheme C‐ZnO/B‐g‐C 3 N 4 photocatalyst with oxygen vacancies was fabricated through modified biomass‐derived C doping for methylene blue (MB) degradation. The optimized catalyst achieved 97.8% degradation efficiency within 70 min under visible light. UV‐DRS analysis revealed that C doping narrowed the bandgap and enhanced visible‐light absorption. XPS results confirmed the S‐scheme charge transfer pathway in C‐ZnO/B‐g‐C 3 N 4 . The synergistic effects of C doping and oxygen vacancies significantly improved charge separation and facilitated S‐scheme heterojunction formation. The catalyst exhibited superior photocatalytic performance in alkaline conditions and maintained excellent recyclability. Radical trapping experiments identified the primary reactive species as h + > ·O 2 − > ·OH in descending order of contribution. This work provides a promising strategy for solar‐driven pollutant remediation by combining biomass‐derived carbon modification with S‐scheme heterojunction engineering.
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