4.7 Article

Zero-valent iron-peroxydisulfate as synergistic co-milling agents for enhanced mechanochemical destruction of 2,4-dichlorophenol: Coupling reduction with oxidation

Journal

JOURNAL OF ENVIRONMENTAL MANAGEMENT
Volume 345, Issue -, Pages -

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jenvman.2023.118571

Keywords

Mechanochemistry; Halogenated organic pollutants; Dechlorination; Zero-valent iron; Peroxydisulfate

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Mechanochemical (MC) remediation using zero-valent iron (ZVI) as co-milling agent can effectively dispose solid halogenated organic pollutants (HOPs). Incomplete dechlorination is a common challenge. This study investigates a reduction-oxidation coupling strategy using ZVI and peroxydisulfate (PDS) as co-milling agents, achieving higher dechlorination ratio and mineralization efficiency for 2,4-dichlorophenol (2,4-DCP) through the accumulation of SO4 ·-. The necessity of coupling reduction with oxidation in MC destruction for solid HOPs is validated.
Mechanochemical (MC) remediation with zero-valent iron (ZVI) as co-milling agent enables the non-combustion and solvent-free disposal of solid halogenated organic pollutants (HOPs) via solid-phase reaction, but suffers from incomplete dechlorination (especially for less chlorinated chemicals). Herein, a reduction-oxidation coupling strategy using ZVI and peroxydisulfate as synergistic (ZVI-PDS) co-milling agents was investigated, with 2,4-dichlorophenol (2,4-DCP) as probe contaminant. By revisiting the MC destruction process of 2,4-DCP by ZVI, the contribution of both reductive and oxidative routes is confirmed, and the inefficient & BULL;OH generation is addressed. With ball-to-material and reagent-to-pollutant mass ratios of 30:1 and 13:1, respectively, ZVI-PDS achieves higher dechlorination ratio (86.8%) for 2,4-DCP within 5 h, outcompeting sole ZVI (40.3%) or PDS (33.9%), due to the accumulation of numerous SO4 & BULL; . As suggested by a two-compartment kinetic model, the optimal ZVI/PDS molar ratio of 4:1 is determined, which balances the relative contribution of reductive/ oxidative routes and leads to a maximum mineralization efficiency of 77.4%. The analysis on product distribution verifies the generation of dechlorinated, ring-opening and minor coupling products (with low acute toxicity). This work validates the necessity to couple reduction with oxidation in MC destruction for solid HOPs, and may provide information on reagent formulation.

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