过氧乙酸
降级(电信)
磺胺嘧啶
化学
路径(计算)
化学工程
光化学
组合化学
过氧化氢
有机化学
生物化学
计算机科学
工程类
电信
抗生素
程序设计语言
作者
Yue Liu,Yangyang Wang,Xiao Li,Xiaofang Zhang,Miao Fang,L W Zheng,Yingwei Li,Jingyu Ren,He Guo,Qiuling Ma,Jian Zhou,Tiecheng Wang
标识
DOI:10.1016/j.cej.2024.153167
摘要
Peroxyacetic acid (PAA) oxidation has received widespread concerns for organic pollutant degradation with low secondary pollution. Nanoconfinement is an effective means to enhance the REDOX process by regulating reactive oxygen species formation and shortening the mass transfer distance. Herein, nanoconfined Co species were encapsulated in carbon nanotubes (Co3O4-in-CNTs), with more active sites and faster electron transfer, and exhibited excellent catalytic capacity on PAA activation. Consequently, the PAA/Co3O4-in-CNTs system achieved 100 % removal of sulfadiazine (SDZ) within 5 min, which was kinetically 24 times faster than the unconfined one. CH3C(O)OO and CH3C(O)O were the vital contributors, and the Co(IV) and 1O2 created non-radical oxidation pathways via electron transfer. Theoretical calculations revealed that the electron delocalization around Co-active sites and electron rearrangement induced by nanoconfinement promoted the Co(IV), 1O2, CH3C(O)OO, and CH3C(O)O formation, thus accelerating SDZ removal process. Moreover, the PAA/Co3O4-in-CNTs system performed great stability under different environmental conditions.
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