化学
催化作用
吸附
氧化还原
多孔性
氯
反应速率常数
化学工程
水处理
无机化学
降级(电信)
电子顺磁共振
废水
污染物
污水处理
工业废水处理
激进的
猝灭(荧光)
光化学
多相催化
甲基橙
协同催化
反应机理
比表面积
动力学
环境化学
活动站点
磺酸
化学反应
双金属片
人体净化
作者
Linlin Huang,Xuwen Zhang,Jiangjun Cai,Han Jiang,Yu Pan,Lilai Liu,Zhiwei Song,Tao Sheng,Lixin Li
出处
期刊:Langmuir
[American Chemical Society]
日期:2025-10-02
卷期号:41 (40): 27569-27581
被引量:5
标识
DOI:10.1021/acs.langmuir.5c03998
摘要
This study fabricated KOH-activated coal-pit-derived porous carbon (PC) to activate peroxymonosulfate (PMS) for degrading the model organic pollutant Orange G (OG), systematically clarifying the effects of operational variables and reaction mechanisms. Superior catalytic performance was attained with PC, achieving 91.8% OG removal via PMS activation. This performance was ascribed to its well-developed porous structure and abundant active sites. Kinetic analysis revealed that the PC/PMS system had a first-order rate constant ( k obs ) of 0.0607 min –1, 40-fold higher than PMS alone, confirming the synergistic catalytic effects. Optimal operational conditions were 1.0 mM PMS, 0.100 g/L PC, and an acidic pH (3.0). Anions NO 3 – and HCO 3 – inhibited degradation via radical quenching, whereas Cl – promoted OG removal through active chlorine species formation. PC maintained stable adsorption (≈22%) across pH 2–9, with acidic conditions favoring SO 4 • – /•OH generation and alkaline conditions reducing •OH efficiency. Quenching experiments and electron paramagnetic resonance (EPR) identified nonradical 1 O 2 as the dominant oxidant (83.18% contribution). Structural analysis confirmed C═O, C═C groups, and structural defects as primary active sites, which facilitated PMS activation via electron-withdrawing effects and surface redox reactions. Although PC recyclability decreased from 89.02 to 64.78% over three cycles due to pore blockage, the system exhibited broad applicability to sulfonic acid-containing dyes. This work highlighted that porous morphology and surface chemistry were critical for PC-mediated PMS activation in pollutant remediation, offering guidance for optimizing industrial wastewater treatment.
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