纳米笼
催化作用
水溶液
氧化还原
降级(电信)
激进的
化学
活性氧
材料科学
四环素
原位
光化学
组合化学
化学工程
氧气
水处理
蚀刻(微加工)
多相催化
同种类的
纳米技术
过氧化氢
转化(遗传学)
单线态氧
高级氧化法
生物炭
羟基自由基
作者
Li X,Yue Wang,Yan Li,Guoliang Li,Jing Lan,Zongshan Zhao
标识
DOI:10.1021/acsami.5c24384
摘要
Tetracycline (TC) is a widely used antibiotic and agricultural additive, which persists in aquatic environments and poses ecological risks. Peroxymonosulfate (PMS)-based advanced oxidation processes (AOPs) provide promising solutions for the transformation of TC, but they require efficient catalysts. Here, we synthesized a hollow CoMo-LDH nanocage catalyst via in situ aqueous etching of ZIF-67, which is triggered by MoO42–. This organic-solvent-free synthesis method effectively prevents secondary pollution. The CoMo-LDH/PMS system achieves 98.1% TC removal within 15 min and maintains 90.56% removal efficiency after 13 cycles. Mechanistic studies reveal that both radicals (•OH/SO4•–) and the nonradical 1O2 pathway contribute to TC degradation, with 1O2 identified as the dominant reactive oxygen species (ROS). The Co(III)/Co(II) redox cycle drives PMS activation, which is particularly essential for the 1O2 generation. This work presents an eco-friendly strategy for fabricating stable, high-performance catalysts, which hold practical potential for water remediation.
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