矿化(土壤科学)
化学
电化学
污染物
废水
苯酚
电子转移
污水处理
阳极
降级(电信)
化学工程
电极
纳米颗粒
生物降解
环境化学
生态毒性
水处理
工业废水处理
制浆造纸工业
药品和个人护理产品的环境影响
化学稳定性
生理盐水
动力学
作者
Wenxiao Zheng,Hengyi Fu,Ziyuan Huang,Xiaohong Guan,Xin Luo,Chunhua Feng
标识
DOI:10.1021/acs.est.5c14298
摘要
Electrochemical oxidation (EO) is a promising technology for saline wastewater treatment, but its application is hindered by limited efficiency and the generation of toxic chlorinated byproducts. Here we introduce a nanoconfinement-assisted EO strategy using TiO2 nanotube (NT) anodes that overcomes these challenges. Compared with TiO2 film and nanoparticle electrodes, the TiO2 NT system achieved 95.6% phenol removal (vs 61.3% and 78.1%), a 3-fold higher degradation rate constant, 71.9% mineralization efficiency (vs 10.8% and 17.9%), and ∼80% lower chlorinated byproduct conversion. Six representative pharmaceutical and personal care products were removed by >90% with concurrent toxicity reduction. Mechanistic investigations combined with density functional theory revealed that spatial confinement enriches pollutants and reactive species at the electrode interface, strengthening direct electron transfer (DET) and indirect direct electron transfer (IDET). More importantly, confinement promoted radical–radical cross-coupling, establishing a synergistic pathway between DET and IDET with the lowest thermodynamic barrier, driving deep mineralization while minimizing chlorination. The nanoconfinement-assisted EO system further demonstrated efficient pollutant removal, toxicity control, and long-term stability in treating biologically treated coking wastewater. These findings highlight nanoconfinement as a powerful design principle for advancing EO toward practical saline wastewater treatment.
科研通智能强力驱动
Strongly Powered by AbleSci AI