纳米反应器
催化作用
化学
氧化还原
化学工程
碳纤维
光降解
光热治疗
降级(电信)
光化学
材料科学
纳米技术
光催化
无机化学
有机化学
复合数
复合材料
电信
工程类
计算机科学
作者
Xianhe Deng,Wanting Hui,Yina Guan,Yanqiu Zhang,Tingting Zhao,Changliang Guo,Baifu Xin,Yang Yang,Tongjie Yao,Jie Wu
标识
DOI:10.1016/j.cej.2022.138221
摘要
Catalytic reaction confined in the nanoreactor could be accelerated by taking advantage of confinement effect. Photo-Fenton reaction has already been verified as an effective technique for pollutant degradation. Therefore, it was rational to infer that the degradation performance of photo-Fenton reaction inside the nanoreactor could be further improved. Nevertheless, how to construct a suitable nanoreactor to realize the aim was still a challenge. Herein, FeS2/MoS2@C nanoreactor with FeS2/MoS2 heterojunctions encapsulated inside the carbon capsule was prepared using Fe-MIL-101 as hard template via ions exchange, chelation competition induced polymerization, and calcination in sequence. In photo-Fenton reaction, photo-induced e− followed a Z-scheme transfer path, leading to the well-preserved redox capacity of separated e− and h+. A large amount of reactive species were generated inside the capsule, and their contributions followed the order: •OH > h+>1O2>•O2–. The complex catalytic mechanism was disclosed via tracing the source of reactive species. Furthermore, to better illustrate the confinement effect, the broken-FeS2/MoS2@C was prepared as a reference. The accelerated degradation rate, better visible-light harvest, enhanced photothermal effect, and higher yield of self-produced O2 inside the integrated capsule were disclosed. This work illustrates the advantage of nanoreactor, and provides a new vision to improve the degradation performance in photo-Fenton reaction.
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