Enhanced in situ remediation of naphthalene-contaminated soil by alkaline activated persulfate using acetonitrile as assistant solvent

IF 5.5 Q1 ENGINEERING, CHEMICAL
Tingting Lv , Hong Wang , Ruihai Li , Chengliang Yang , Ding Li , Wei Zhao , Jianxin Li
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Abstract

Although the advanced oxidation process based on persulfate (PS) is an attractive approach due to its high efficiency and environmental friendliness, the difficult degradability and low solubility of naphthalene (NAP) hinder its practical application for in situ chemical remediation of contaminated sites. Herein, this study reported that alkaline activated PS with acetonitrile (ACN) as assistant solvent for in-situ remediation of NAP contaminated soils to improve the removal efficiency. The results showed that the degradation rate of NAP in contaminated soil was up to 36.7 % on the 1st day in the presence of CPS = 382 mmol L-1, and pH = 12, which was significantly higher than the NAP removal rate without the addition of ACN (8.6 %) under the same conditions. This indicated that the addition of ACN promoted the solubility of organic pollutants in the liquid phase and improved its degradation efficiency. The NAP removal rate (the 21st day) was up to 97.5 %. ESR tests and free radical quenching experiments indicated that SO4•−, ·OH and 1O2 were the dominant active species. The degradation mechanism of NAP mainly involved hydroxylation, decarboxylation, and ring opening reactions. The toxicity assessment using the Toxicity Estimation Software Tool (T.E.S.T.) and bioluminescent bacteria assays showed that NAP could eventually be degraded into less toxic degradation intermediates. In summary, this study confirmed the suitability of ACN enhanced alkaline activated PS system for the degradation of organic pollutants and provided some new ideas for the in situ large-scale remediation of organic contaminated sites.

Abstract Image

以乙腈为辅助溶剂,强化碱性活化过硫酸盐对萘污染土壤的原位修复
虽然以过硫酸盐(PS)为基础的高级氧化工艺因其高效环保的特点而备受关注,但萘(NAP)的难降解性和低溶解度阻碍了其在污染场地原位化学修复中的实际应用。本研究报道了以乙腈(ACN)为辅助溶剂的碱性活化PS原位修复NAP污染土壤,以提高其去除效率。结果表明,在CPS = 382 mmol L-1、pH = 12的条件下,第1天NAP在污染土壤中的降解率达36.7%,显著高于未添加ACN的8.6%。说明ACN的加入促进了有机污染物在液相中的溶解度,提高了其降解效率。第21天NAP去除率达97.5%。ESR和自由基猝灭实验表明,SO4•−、·OH和1O2是主要活性物质。NAP的降解机制主要包括羟基化、脱羧和开环反应。利用毒性评估软件工具(T.E.S.T.)和生物发光细菌试验进行的毒性评估表明,NAP最终可以降解为毒性较小的降解中间体。综上所述,本研究证实了ACN增强碱性活化PS体系对有机污染物降解的适宜性,为有机污染场地的原位大规模修复提供了一些新的思路。
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来源期刊
Chemical Engineering Journal Advances
Chemical Engineering Journal Advances Engineering-Industrial and Manufacturing Engineering
CiteScore
8.30
自引率
0.00%
发文量
213
审稿时长
26 days
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