Department of Chemical Engineering, University of Patras, Caratheodory 1, University Campus, GR 26504 Patras, Greece.
Department of Chemical Engineering, University of Western Macedonia, GR 50132 Kozani, Greece.
Ultrason Sonochem. 2020 Oct;67:105139. doi: 10.1016/j.ultsonch.2020.105139. Epub 2020 Apr 22.
The sonochemical degradation of trimethoprim (TMP), a widely used antibiotic, in various water matrices was investigated. The effect of several parameters, such as initial TMP concentration (0.5-3 mg/L), actual power density (20-60 W/L), initial solution pH (3-10), inorganic ions, humic acid and water matrix on degradation kinetics was examined. The pseudo-first order degradation rate of TMP was found to increase with increasing power density and decreasing pH, water complexity (ultrapure water > bottled water > secondary wastewater) and initial TMP concentration. TMP degradation is accompanied by the formation of several transformation products (TPs) as evidenced by LC-QToF-MS analysis. Nine such TPs were successfully identified and their time-trend profiles during degradation were followed. An in silico toxicity evaluation was performed showing that several TPs could potentially be more toxic than the parent compound towards Daphnia magna, Pimephales promelas and Pseudokirchneriella subcapitata.
研究了超声化学降解在各种水基质中广泛使用的抗生素甲氧苄啶(TMP)的情况。考察了初始 TMP 浓度(0.5-3mg/L)、实际功率密度(20-60W/L)、初始溶液 pH 值(3-10)、无机离子、腐殖酸和水基质等多种参数对降解动力学的影响。发现 TMP 的准一级降解速率随功率密度的增加、pH 值的降低、水复杂性(超纯水>瓶装水>二级废水)和初始 TMP 浓度的增加而增加。通过 LC-QToF-MS 分析证实,TMP 降解伴随着几种转化产物(TPs)的形成。成功鉴定了其中 9 个 TPs,并跟踪了它们在降解过程中的时间趋势。进行了一种计算毒性评估,表明与母体化合物相比,几种 TPs 对大型溞、蓝鳃太阳鱼和斜生栅藻可能具有更大的毒性。