化学
儿茶酚
降级(电信)
苯胺
激进的
水溶液
氧化还原
结晶紫
Crystal(编程语言)
污染
无机化学
晶体结构
化学工程
光化学
水处理
反应性(心理学)
苯酚
污染物
环境化学
地表水
动力学
环境修复
单晶
表面改性
有机化学
作者
Xuewen Luo,Zhuofeng Hu,Han Xiao,Yangjian Zhou,Xin Yang
标识
DOI:10.1021/acs.est.5c08657
摘要
Traditional advanced oxidation processes (AOPs) often face significant challenges in contaminant degradation due to strong interference from complex water matrices. In this study, o-semiquinone radicals (o-SQ•-)-driven AOP was established by MnO2-mediated catechol oxidation, achieving selective degradation of aniline contaminants (e.g., sulfamethoxazole (SMX)) in real water matrices. Four MnO2 crystal phases (α-, β-, γ-, and δ-MnO2) were evaluated, and the degradation efficiency of SMX followed the order γ > α > β > δ-MnO2. Both MnO2 surface-bound o-SQ•- and aqueous-phase Mn(II)-o-SQ•- contributed to the SMX degradation. Crystal phases dictated o-SQ•- generation─α-, β-, and γ-MnO2─favored the MnO2 solids surface binding of o-SQ•-, while δ-MnO2 promoted the interaction of o-SQ•- with Mn(II) in the aqueous phase. Higher MnO2 redox potentials and Mn(IV) content correlated with enhanced o-SQ•- generation and faster SMX degradation. Mechanistic studies revealed that o-SQ•- attacks SMX through radical addition, forming low-toxicity products. Given that dihydroxyphenyl is a prevalent component of natural aquatic environments, this work advances the design of selective, eco-friendly AOPs with anti-interference capabilities.
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