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过氧乙酸对 pH 依赖性双酚 A 转化和碘消毒副产物生成的影响:动力学和机理探讨。

pH-dependent bisphenol A transformation and iodine disinfection byproduct generation by peracetic acid: Kinetic and mechanistic explorations.

机构信息

State Key Laboratory of Hydraulics and Mountain River Engineering, College of Architecture and Environment, Sichuan University, Chengdu 610065, China; Sino-German Centre for Water and Health Research, Sichuan University, Chengdu 610065, China.

Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology, School of Environmental Science and Engineering, Sun Yat-Sen University, Guangzhou 510275, China.

出版信息

Water Res. 2023 Nov 1;246:120695. doi: 10.1016/j.watres.2023.120695. Epub 2023 Oct 4.

Abstract

Peracetic acid (PAA) is regarded as an environmentally friendly oxidant because of its low formation of toxic byproducts. However, this study revealed the potential risk of generating disinfection byproducts (DBPs) when treating iodine-containing wastewater with PAA. The transformation efficiency of bisphenol A (BPA), a commonly detected phenolic contaminant and a surrogate for phenolic moieties in dissolved organic matter, by PAA increased rapidly in the presence of I, which was primarily attributed to the formation of active iodine (HOI/I) in the system. Kinetic model simulations demonstrated that the second-order rate constant between PAA and HOI was 54.0 M s at pH 7.0, which was lower than the generation rate of HOI via the reaction between PAA and I. Therefore, HOI can combine with BPA to produce iodine disinfection byproducts (I-DBPs). The transformation of BPA and the generation of I-DBPs in the I/PAA system were highly pH-dependent. Specifically, acidic conditions were more favorable for BPA degradation because of the higher reaction rates of BPA and HOI. More iodinated aromatic products were detected after 5 min of the reaction under acidic and neutral conditions, resulting in higher toxicity towards E. coli. After 12 h of the reaction, more adsorbable organic iodine (AOI) was generated at alkaline conditions because HOI was not able to efficiency transform to IO. The presence of HO in the PAA solution played a role in the reaction with HOI, particularly under alkaline conditions. This study significantly advances the understanding of the role of I in BPA oxidation by PAA and provides a warning to further evaluate the potential environmental risk during the treatment of iodine-bearing wastewater with PAA.

摘要

过氧乙酸(PAA)因其生成的有毒副产物较少而被视为一种环境友好型氧化剂。然而,本研究揭示了在使用 PAA 处理含碘废水时生成消毒副产物(DBP)的潜在风险。双酚 A(BPA)是一种常见的酚类污染物,也是溶解有机物中酚基部分的替代物,当有碘存在时,PAA 对其的转化效率迅速提高,这主要归因于体系中活性碘(HOI/I)的形成。动力学模型模拟表明,在 pH 值为 7.0 时,PAA 和 HOI 之间的二级速率常数为 54.0 M s,低于 PAA 和 I 之间反应生成 HOI 的速率。因此,HOI 可以与 BPA 结合生成碘消毒副产物(I-DBPs)。I/PAA 体系中 BPA 的转化和 I-DBPs 的生成高度依赖于 pH 值。具体而言,由于 BPA 和 HOI 的反应速率较高,酸性条件更有利于 BPA 的降解。在酸性和中性条件下,反应 5 分钟后检测到更多的碘化芳族产物,导致对大肠杆菌的毒性更高。反应 12 小时后,由于 HOI 无法有效转化为 IO,在碱性条件下生成更多的可吸附有机碘(AOI)。PAA 溶液中 HO 的存在对与 HOI 的反应起作用,特别是在碱性条件下。本研究显著提高了对 PAA 氧化 BPA 过程中 I 作用的认识,并对使用 PAA 处理含碘废水时可能存在的潜在环境风险提出了警示。

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