Underwater microplasma bubbles for efficient and simultaneous degradation of mixed dye pollutants

降级(电信) 污染物 微等离子体 化学 亚甲蓝 甲基橙 环境化学 激进的 废水 化学工程 环境工程 有机化学 等离子体 光催化 环境科学 催化作用 物理 工程类 电信 量子力学 计算机科学
作者
Renwu Zhou,Tianqi Zhang,Rusen Zhou,Anne Mai‐Prochnow,Sri Balaji Ponraj,Zhi Fang,Hassan Masood,John Kananagh,Dale D. McClure,David Alam,Kostya Ostrikov,Patrick J. Cullen
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:750: 142295-142295 被引量:96
标识
DOI:10.1016/j.scitotenv.2020.142295
摘要

Complete degradation of mixtures of organic pollutants is a major challenge due to their diverse degradation pathways. In this work, a novel microplasma bubble (MPB) reactor was developed to generate plasma discharges inside small forming bubbles as an effective mean of delivering reactive species for the degradation of the target organic contaminants. The results show that the integration of plasma and bubbles resulted in efficient degradation for all azo, heterocyclic, and cationic dyes, evidenced by the outstanding energy efficiency of 13.0, 18.1 and 22.1 g/kWh with 3 min of processing, in degrading alizarin yellow (AY), orange II (Orng-II) and methylene blue (MB), individually. The MPB treatment also effectively and simultaneously degraded the dyes in their mixtures such as AY + Orng-II, AY + MB and AY + Orng-II + MB. Scavenger assays revealed that the short-lived reactive species, including the hydroxyl (OH) and superoxide anion (O2-) radicals, played the dominant role in the degradation of the pollutants. Possible degradation pathways were proposed based on the intermediate products detected during the degradation process. The feasibility of this proposed strategy was further evaluated using other common water pollutants. Reduced toxicity was confirmed by the observed increases in human cell viability for the treated water. This work could support the future development of high performance- and energy-efficient wastewater abatement technologies.
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