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联合高级氧化工艺协同降解水相环境中的布洛芬。

Combined advanced oxidation processes for the synergistic degradation of ibuprofen in aqueous environments.

机构信息

Particulate Fluids Processing Centre, School of Chemistry, University of Melbourne, Grattan Street, Melbourne, 3010 VIC, Australia.

出版信息

J Hazard Mater. 2010 Jun 15;178(1-3):202-8. doi: 10.1016/j.jhazmat.2010.01.064. Epub 2010 Jan 22.

Abstract

Ibuprofen (IBP) is a widely used analgesic and anti-inflammatory drug and has been found as a pollutant in aqueous environments. The sonolytic, photocatalytic and sonophotocatalytic degradations of IBP in the presence of homogeneous (Fe(3+)) and heterogeneous photocatalysts (TiO(2)) were studied. When compared with sonolysis and photocatalysis, a higher degradation rate was observed for sonophotocatalysis in the presence of TiO(2) or Fe(3+) and also a slight synergistic enhancement was found with a synergy index of 1.3 and 1.6, respectively. Even though TiO(2) sonophotocatalysis showed an additive process effect in the mineralization, a significant synergy effect was observed for the sonophotocatalysis in the presence of Fe(3+). This might be due to the formation of photoactive complexes between Fe(3+) and IBP degradation products, such as carboxylic acids. High performance liquid chromatography (HPLC) and electrospray ionisation mass spectrometry (ESMS) techniques were employed for the identification of the degradation intermediates. The sonication of IBP led to the formation of its mono- and di-hydroxylated intermediates. Apart from the hydroxylated intermediates, products formed due to the oxidation of propanoic acid and isobutyl substituents of IBP were also observed.

摘要

布洛芬(IBP)是一种广泛使用的镇痛药和消炎药,已被发现是水环境污染中的污染物。研究了在均相(Fe(3+))和多相光催化剂(TiO(2))存在下,超声、光催化和超声光催化降解 IBP。与超声和光催化相比,在 TiO(2)或 Fe(3+)存在下的超声光催化显示出更高的降解速率,并且分别观察到协同指数为 1.3 和 1.6 的轻微协同增强。尽管 TiO(2)超声光催化在矿化过程中表现出附加的过程效应,但在 Fe(3+)存在下的超声光催化中观察到显著的协同效应。这可能是由于 Fe(3+)和 IBP 降解产物(如羧酸)之间形成了光活性络合物。采用高效液相色谱(HPLC)和电喷雾离子化质谱(ESMS)技术鉴定了降解中间体。IBP 的超声处理导致其单羟基化和二羟基化中间体的形成。除了羟基化中间体外,还观察到由于 IBP 的丙酸和异丁基取代基的氧化而形成的产物。

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