光催化
降级(电信)
聚乙烯
热液循环
材料科学
化学工程
污染物
氯化物
催化作用
化学
有机化学
冶金
复合材料
计算机科学
电信
工程类
作者
Cuiwei Du,Weiwei Feng,Shiyu Nie,Jiale Zhang,Yutong Liang,Xiao Han,Yuhan Wu,Jinglan Feng,Shuying Dong,Haijin Liu,Jianhui Sun
标识
DOI:10.1016/j.seppur.2021.119734
摘要
The development of cost-effective dual-function photocatalytic materials to advance clean energy generation and storage combined with superior pollutant degradation performance has thus far remained challenging. For this study, potassium hexafluorophosphate (KPF6) was introduced to modify BiOBr via a simple one-pot hydrothermal method, where uniformly dispersed KPF6 on BiOBr nanosheets improved H2O2 yields and the pollutant degradation performance. Such materials have proven to be critical for low bandgap and enhanced surface charge separation for efficient H2O2 production. The optimized sample of 20 wt% KPF6/BiOBr showed a H2O2 production rate of 53.36 mg·L–1, which was much higher than that of pure BiOBr (27.19 mg·L–1). Nitroblue tetrazolium chloride (NBT) superoxide radical detection results suggested that two-step single-electron oxygen reduction was the primary pathway. More importantly, discarded polyethylene bags from supermarkets have been decomposed though the in-situ generation of H2O2 using KPF6/BiOBr materials, and the mass loss of plastics was 2.33 times higher than that of the pure BiOBr. This research offers new perspectives toward the development of new functionalized materials for H2O2 production, while improving capacities for the degradation of plastics.
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