4.7 Article

Co/N co-doped porous carbon as a catalyst for the degradation of RhB by efficient activation of peroxymonosulfate

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ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
卷 30, 期 4, 页码 10969-10981

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SPRINGER HEIDELBERG
DOI: 10.1007/s11356-022-22548-1

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Co/N co-doping carbon materials; Activation performance; Peroxymonosulfate; Degradation; Rhodamine B; Reactive oxygen species

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This study reports the preparation of Co/N-NPCx/y with a porous structure and excellent activation properties. The synthesis involves the preparation of Zn/Co-ZIF(x) and the carbonization of Zn/Co-ZIF(x) to achieve the porous structure. The Co/N-NPCx/y exhibits superior catalytic activity in the degradation of Rhodamine B by PMS activation.
We report on the preparation of Co/N-NPCx/y with porous structure and excellent activation properties. The synthesis involves the preparation of Zn/Co-ZIF(x) and the carbonization of Zn/Co-ZIF(x) at a high temperature in an inert atmosphere. The volatilization of zinc during carbonization results in a porous structure, which is beneficial to the migration of pollutants. The sizes, specific surface areas, and pore size distribution of Co/N-NPCx/y can be achieved by tuning Zn/Co ratio. The calcination temperatures mainly affect the crystalline phase, crystallinity, and magnetic properties of the as-prepared materials. The effects of the as-prepared materials properties and activation conditions on the Rhodamine B (RhB) degradation by PMS activation were investigated. Overall, it exhibited superior catalytic activity in PMS activation, as evidenced by almost complete removal of RhB (0.020 mM, 100 mL) by using 5 mg/L Co/N-NPC0.5/900 and 1.250 mM PMS within 30 min. Furthermore, it confirmed the participation of SO4 center dot-, center dot OH, and O-1(2) in the catalytic reaction, and both SO4 center dot- and O-1(2) were the main reactive oxygen species that play a major role.

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