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Ultrafast photodegradation of isoxazole and isothiazolinones by UV_(254) and UV_(254)/H_2O_2 photolysis in a microcapillary reactor

机译:在微毛细管反应器中通过UV_(254)和UV_(254)/ H_2O_2光解超快降解异恶唑和异噻唑啉酮

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The photodegradation process of methylisothiazolinone (MIT), benzisothiazolinone (BIT), and isoxazole (ISOX) in ultrapure water and synthetic wastewater by means of UV254 photolysis and by UV254/H2O2 advanced oxidation process were investigated in a microcapillary photoreactor designed for ultrafast photochemical transformation of microcontaminants. For the first time, we estimated key photo-kinetic parameters, i.e. quantum yields (35.4 mmol.ein(-1) for MIT, and 13.5 and 55.8 mmol.ein(-1) for BIT at pH = 4-6 and 8, respectively) and rate constants of the reaction of photo-generated OH radicals with MIT and BIT (2.09 . 10(9) and 5.9 . 10(9) L mol(-1).s(-1) for MIT and BIT). The rate constants of the reaction of photogenerated OH radicals with ISOX in MilliQ water was also estimated (2.15 . 10(9) L mol(-1).s(-1)) and it was in good agreement with literature indications obtained in different aqueous matrices. The models were extended and validated to the case of simultaneous degradation of mixtures of these compounds and using synthetic wastewater as an aqueous matrix. High resolution-accurate mass spectrometry analysis enabled identification of the main intermediates (BIT200, B200, saccharin, BIT166) and enabled proposal of a novel degradation pathway for BIT under UV254/H2O2 treatment. This study demonstrates an ultrafast method to determine key photo-kinetic parameters of contaminants of emerging concern in water and wastewater, which are needed for design and validation of photochemical water treatment processes of municipal and industrial wastewaters. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在设计用于超快光化学转化的微毛细管光反应器中,研究了UV254光解和UV254 / H2O2高级氧化法在超纯水和合成废水中甲基异噻唑啉酮(MIT),苯并异噻唑啉酮(BIT)和异恶唑(ISOX)的光降解过程。微污染物。我们首次估算了关键的光动力学参数,即MIT的量子产率(35.4 mmol.ein(-1),在pH = 4-6和8时BIT的量子产率为13.5和55.8 mmol.ein(-1),以及光生OH自由基与MIT和BIT反应的速率常数(对于MIT和BIT为2.09。10(9)和5.9。10(9)L mol(-1).s(-1))。还估算了MilliQ水中光生OH自由基与ISOX反应的速率常数(2.15。10(9)L mol(-1).s(-1)),这与不同文献中获得的文献指标吻合良好水性基质。扩展并验证了模型,以同时降解这些化合物的混合物并使用合成废水作为水性基质。高分辨率精确的质谱分析能够鉴定主要中间体(BIT200,B200,糖精,BIT166),并能够提出在UV254 / H2O2处理下BIT降解的新途径。这项研究表明了一种超快速方法,可确定水和废水中新出现的污染物的关键光动力学参数,这是设计和验证市政和工业废水的光化学水处理过程所必需的。 (C)2019 Elsevier Ltd.保留所有权利。

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