化学
吸附
电化学
阳极
化学工程
膜
人体净化
热解
羟基化
无机化学
氧化物
激进的
硫化物
部分氧化
矿化(土壤科学)
微型多孔材料
废水
草酸
水处理
石墨烯
膜反应器
活性炭
碳纤维
渗透
降级(电信)
锡
亚砜
资源回收
光催化
有机化学
工业废水处理
间歇式反应器
多硫化物
吸附
作者
Xuechuan Li,Ting Zhou,Sen Lu,Wenhui Li,Xiao Li,Xiaoxiao Lu,Jia Zhou,Guan Zhang
摘要
Electrochemical degradation of halogenated aromatic compounds typically presents a fundamental trade-off between energy-intensive mineralization and partial dehalogenation, which can yield persistent toxic intermediates. Herein, we introduced a dual-anode electrochemical reactor employing sequential hydroxylation and direct electron transfer (DET) mechanisms for the efficient destruction of chlorinated aromatics coupled with carbon resource recovery. The reactor integrated a Ce-doped tin antimony oxide (Ce-ATO) anode and a defective ATO anode. As a proof of concept, 2,4-dichlorophenoxyacetic acid (2,4-D), a widely produced pesticide, was first converted into 2,4-dichlorophenol via hydroxylation reaction at the Ce-ATO anode. This intermediate subsequently underwent DET at the downstream defective ATO anode, generating organic radicals that underwent radical–radical coupling to form oligomers. The inclusion of a proton exchange membrane into the reactor maintained an acidic microenvironment, which enhanced •OH-mediated oxidation and promoted adsorption. The system achieved over 95% removal of 0.45 mM 2,4-D at a current of 1 mA and a membrane flux of 150 LMH, and a corresponding hydraulic retention time of 0.8 min, with an oligomer recovery rate of 62% obtained at 5 mM 2,4-D under otherwise identical conditions. The recovered oligomers were readily pyrolyzed into microporous carbon with a high surface area (454.47 m2·g–1) and demonstrated excellent adsorption capacity for 4-chlorophenol (217.31 mg·g–1). Furthermore, the system demonstrated robust performance when applied to complex pharmaceutical wastewater. This work offered a sustainable strategy for simultaneous decontamination and resource upcycling in high-salinity wastewater streams.
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