普鲁士蓝
聚吡咯
光催化
氧化还原
光化学
激进的
降级(电信)
化学
反应机理
催化作用
化学工程
材料科学
无机化学
电化学
有机化学
工程类
电极
物理化学
电信
计算机科学
作者
Yang Yang,Shouchun Ma,Jiapeng Qu,Jiaqi Li,Yi Liu,Qianqian Wang,Jing Jing,Ye Yuan,Tongjie Yao,Jie Wu
标识
DOI:10.1016/j.jhazmat.2020.124668
摘要
Photo-Fenton reaction is a more effective technique for pollutant disposal than photocatalytic reaction. Herein, Fe2O3@polypyrrole/Prussian blue (Fe2O3@PPy/PB) with a hierarchical porous structure was prepared by a reactive-template method. After transforming typical type-II Fe2O3@PPy to Z-scheme Fe2O3@PPy/PB via PB as a bridge, the degradation rate was increased by 1.4 times in photocatalytic reaction and 4.0 times in photo-Fenton reaction due to higher visible-light harvest, enhanced separation efficiency of photoinduced charges, lower interface resistance, and especially well-preserved redox potentials of holes and electrons. Mechanism studies revealed that holes were quenched by H2O2, and this led to •O2− generation and efficient separation of electrons. Meanwhile, O2 was reduced by separated electrons, and this further increased •O2− yield. Therefore, the main radicals changed from hole in photocatalytic reaction to •O2− in the photo-Fenton reaction, leading to an increase as high as 12.1-fold enhancement in the degradation rate. Conversely, only H2O2 participated into photocatalytic reaction using Fe2O3@PPy while O2 was absent, resulting in merely 4.2-fold improvement. This manuscript gives a comprehensive understanding on mechanisms of type-II and Z-scheme heterojunctions in both photocatalytic and photo-Fenton reactions. Obviously, the outcomes are beneficial for designing catalysts with high photo-Fenton activity.
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