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In situ formation and activation of high-volume H2O2 in micro-nano dendritic ZVC/air system for enhanced Fenton-like degradation of metronidazole

Journal of the Taiwan Institute of Chemical Engineers [2023]
Ping Song, Zhongping Yao, Xiao Zhang, Yanjing Liu, Yunsong Xu, Jiankang Wang
ABSTRACT

Background Fenton-like technology based on in situ formation of H 2 O 2 by activated molecular oxygen has a promising application prospect in the degradation of organic pollutants, which can reduce the environmental and security problems caused by excessive use of H 2 O 2 in traditional Fenton technology. Methods We constructed a micro-nano dendritic zero-valent copper catalyst (mnZVC) by the simple electrochemical reduction, and studied the performance, mechanism and degradation pathway of mnZVC-activated molecular oxygen for the degradation of metronidazole (MNZ). Significant Findings In mnZVC/air system, metronidazole (MNZ) removal efficiency reaches 92.39% within 120 min under pH 3, much higher than that of commercial micron zero-valent copper. In addition, mnZVC has versatility to degrade phenol, methyl orange (MO), rhodamine B (RhB) and tetracycline hydrochloride (TCH). The continuous high-volume generation of H 2 O 2 is the main reason for the high efficient removal of MNZ, which is attributed to the micro-sized dispersibility and nano-sized activity of the mnZVC. Besides, •OH and •O 2 − are proved to be the main active species directly causing MNZ degradation by free radical scavenging experiments and other analysis. Based on the results of LC-MS, the primary degradation intermediates of metronidazole were identified, and three possible degradation pathways were proposed. This work provides a new idea for the design of catalyst with in situ generated H 2 O 2 for degradation of organic contaminants.

MATERIALS

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