Promoting removal of polystyrene microplastics from wastewater by electrochemical treatment

微塑料 聚苯乙烯 废水 污水处理 电化学 化学 环境科学 环境化学 废物管理 制浆造纸工业 环境工程 电极 有机化学 聚合物 工程类 物理化学
作者
Giovanni Falco,Angelo Fenti,Simona Galoppo,Simeone Chianese,Dino Musmarra,Mariacristina Cocca,Salvatore Mallardo,Pasquale Iovino
出处
期刊:Journal of water process engineering [Elsevier BV]
卷期号:68: 106418-106418 被引量:50
标识
DOI:10.1016/j.jwpe.2024.106418
摘要

Microplastics (MPs) are emerging contaminants with potential ecological and human health impacts, necessitating effective remediation technologies. Recently, electrochemical oxidation (EO) has garnered attention as a suitable method for treating water contaminated with MPs. However, research on EO's effectiveness remains limited. This study investigates the EO treatment of 1.0 μm polystyrene (PS) MPs in a lab-scale reactor using boron-doped diamond (BDD) electrodes. Various operational parameters, such as electrolyte composition and concentration, initial PS concentration, and applied current density, were examined for their impact on PS degradation efficiency. Optimal degradation was achieved using Na 2 SO 4 (0.02 M) as a supporting electrolyte, an initial PS concentration of 60 mg L −1 , and an applied current density of 60 A/m 2 for 5 h. The degradation mechanism likely involved indirect EO through the formation of highly oxidizing radicals rather than direct EO between the anode and PS molecules. High current densities induced morphological changes in the PS microparticles. Fourier transform infrared spectroscopy confirmed new functional groups on the PS surface, indicating oxidation. These findings suggest that EO using BDD electrodes is a promising approach for treating microplastic-polluted water. However, further studies are needed to optimize the process, particularly concerning power requirements, electrode costs, and reactor configuration. • Removal of polystyrene MPs by EO process using BDD electrodes was investigated. • PS removal efficiency increased with increasing applied current density. • Self-combination reactions among the electrogenerated SO 4 •− decreased PS removal. • SEM analyses showed morphological changes and deformations of PS microparticles. • FTIR analyses suggested formation of additional functional groups on the plastic surface.
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