催化作用
人体净化
锰
降级(电信)
材料科学
环境修复
化学工程
光催化
氧化铁
纳米技术
氧化物
化学
污染
废物管理
有机化学
冶金
工程类
生物
电信
计算机科学
生态学
作者
Heng Ye,Shengnan Wang,Yong Wang,Peiting Guo,Liying Wang,Chengke Zhao,Shuqing Chen,Yimai Chen,Hongqi Sun,Shaobin Wang,Xing Ma
标识
DOI:10.1016/j.apcatb.2022.121484
摘要
Wastewater remediation using micro/nanomotors is a hot topic, and MnO 2 based materials have become fascinating alternatives to rare noble metal-based micro/nanomotors. Herein, we demonstrate facile and large-scale synthesis of Fe-MnO 2 core-shell micromotors for antibiotic pollutant removal. Heat-treatment results in a phase transformation of MnO 2 with formation of iron oxides and partially exfoliates the MnO 2 nanoplate shell structure to promote mobility. The iron-manganese oxide micromotors exhibit an efficient removal of tetracycline antibiotics via a combination of catalytic degradation and adsorptive bubble separation. For the first time, atomic H* was found to participate in the micromotor-assisted degradation process, resulting in optimal Fenton reaction in neutral conditions with a good decontamination performance. Owing to the merits of abundance, magnetic recovery, facile fabrication, good motion, and environmental friendliness, as well as decontamination performance in a wide pH range, these core-shell micromotors demonstrate a promising candidate in practical wastewater treatment. • Core-shell iron-manganese oxides micro/nanomotors (FMO-MNMs) were prepared. • FMO-MNMs present good mobility and catalytic performance in organic degradation. • Coupled catalytic degradation and adsorptive bubbles induce high removal efficiency. • Atomic H* with • OH produces better organic degradation at natural pH.
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