Removal and transformation of pharmaceuticals in wastewater treatment plants and constructed wetlands

Eunkyung Lee, S. Lee, J. Park, Yunseul Kim, Jung-Min Cho
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引用次数: 24

Abstract

Abstract. Since trace organic compounds such as pharmaceuticals in surface water have been a relevant threat to drinking water supplies, in this study removal of pharmaceuticals and transformation of pharmaceuticals into metabolites were investigated in the main source of micropollutants such as WWTPs and engineered constructed wetlands. Pharmaceuticals were effectively removed by different WWTP processes and wetlands. Pharmaceutical metabolites with relatively low log D value were resulted in the low removal efficiencies compared to parent compounds with relatively high log D value, indicating the stability of metabolites. And the constructed wetlands fed with wastewater effluent were encouraged to prevent direct release of micropollutants into surface waters. Among various pharmaceuticals, different transformation pattern of ibuprofen was observed with significant formation of 1-hydroxy-ibuprofen during biological treatment in WWTP, indicating preferential biotransformation of ibuprofen. Lastly, transformation of pharmaceuticals depending on their structural position was investigated in terms of electron density, and, the electron rich C1 = C2 bond of carbamazepine was revealed as an initial transformation position.
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污水处理厂和人工湿地中药物的去除和转化
摘要由于地表水中的微量有机化合物(如药物)已成为饮用水供应的相关威胁,在本研究中,研究了药物的去除和药物转化为代谢物的微污染物的主要来源,如污水处理厂和工程人工湿地。不同的污水处理工艺和湿地都能有效地去除药物。与log D值较高的母体化合物相比,log D值较低的药物代谢物的去除率较低,说明代谢物具有稳定性。鼓励以废水为饵料的人工湿地防止微污染物直接释放到地表水中。在不同的药物中,布洛芬的转化模式不同,在污水处理厂生物处理过程中,1-羟基布洛芬的形成显著,表明布洛芬的生物转化优先。最后,从电子密度的角度考察了药物在结构位置上的转化,发现卡马西平的富电子C1 = C2键是初始转化位置。
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来源期刊
Drinking Water Engineering and Science
Drinking Water Engineering and Science Environmental Science-Water Science and Technology
CiteScore
3.90
自引率
0.00%
发文量
3
审稿时长
40 weeks
期刊最新文献
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