催化作用
过氧化氢
活性氧
化学
氧气
光化学
分解
降级(电信)
化学工程
超氧化物
激进的
羟基自由基
有机化学
酶
工程类
电信
生物化学
计算机科学
作者
Xianjun Tan,Wenhui Ding,Zhenying Jiang,Linxiao Sun,Yuxiong Huang
出处
期刊:Nano Research
[Springer Nature]
日期:2021-09-09
卷期号:15 (3): 1973-1982
被引量:43
标识
DOI:10.1007/s12274-021-3848-3
摘要
To better understand the mechanisms of hydrogen peroxide (H2O2)’s decomposition and reactive oxygen species (ROS)’s formation on the catalyst’s surface is always a critical issue for the environmental application of Fenton/Fenton-like reaction. We here report a new approach to activate H2O2 in a co-catalytic Fenton system with oxygen incorporated MoS2, namely MoS2−xOx nanosheets. The MoS2−xOx nanosheets assisted co-catalytic Fenton system exhibited superior degradation activity of emerging antibiotic contaminants (e.g., sulfamethoxazole). Combining density functional theory (DFT) calculation and experimental investigation, we demonstrated that oxygen incorporation could improve the intrinsic conductivity of MoS2−xOx nanosheets and accelerate surface/interfacial charge transfer, which further leads to the efficacious activation of H2O2. Moreover, by tuning the oxygen proportion in MoS2−xOx nanosheets, we are able to modulate the generation of ROS and further direct the oriented-conversion of H2O2 to surface-bounded superoxide radical (·O2 surface−). It sheds light on the generation and transformation of ROS in the engineered system (e.g., Fenton, Fenton-like reaction) for efficient degradation of persistent pollutants.
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