College of Chemistry Chemical Engineering, and Environmental Engineering, Liaoning University of Petroleum & Chemical Technology, Fushun 113001, Liaoning, China.
College of Applied Chemistry, Shenyang University of Chemical Technology, Shenyang, 100142, Liaoning, China.
Sci Total Environ. 2019 Feb 15;651(Pt 2):1653-1660. doi: 10.1016/j.scitotenv.2018.09.323. Epub 2018 Sep 25.
The pollution of antibiotics, including tetracyclines (TCs), in aquatic environments has become an issue of concern in recent years. Herein, an in situ sampling of TCs in pig breeding wastewater that utilizes the technique of diffusive gradients in thin films (DGT), based on commercial nanosized ZnO (nanoZnO) particles as the potential effective binding agent and a polyethersulfone (PES) membrane as the diffusion layer, was developed. The diffusion coefficients of tetracycline (TC), oxytetracycline (OTC) and chlortetracycline (CTC) in a PES membrane at 25 °C were (1.37 ± 0.06) × 10 cm s, (1.29 ± 0.05) × 10 cm s and (1.94 ± 0.07) × 10 cm s, respectively. The results showed that the adsorption capacities of a gel disc containing 2.5 g L of nanoZnO particles were as high as 3.93 ± 0.20 mg disc for TC, 3.21 ± 0.20 mg disc for OTC and 4.62 ± 0.22 mg disc for CTC. Both a solution pH in the range of 5-9 and an ionic strength (as pNaCl) in the range of 1-3 had an insignificant influence on the TCs uptake by nanoZnO-DGT samplers. There was no significant influence of fulvic acid or tannic acid on the TC uptake by nanoZnO-DGT samplers at the tested mass ratios. For all spiked freshwater samples, there was no notable interference of matrices on the performance of the nanoZnO-DGT samplers, suggesting that the nanoZnO-DGT samplers yielded satisfactory results for the uptake of TCs at concentrations existing in the spiked freshwater samples. Field deployment of the nanoZnO-DGT samplers in pig breeding wastewater also exhibited excellent precision and accuracy, indicating that the nanoZnO-DGT samplers could be used as a promising method for the in situ sampling of TC antibiotics in aquatic environments.
近年来,抗生素(包括四环素类)在水环境中的污染已成为一个备受关注的问题。本研究采用扩散梯度薄膜技术(DGT)原位采集猪养殖废水中的四环素类物质,以商业纳米氧化锌(nanoZnO)颗粒为潜在有效结合剂,聚醚砜(PES)膜为扩散层。在 25°C 下,四环素(TC)、土霉素(OTC)和金霉素(CTC)在 PES 膜中的扩散系数分别为(1.37±0.06)×10-5cm2s-1、(1.29±0.05)×10-5cm2s-1和(1.94±0.07)×10-5cm2s-1。结果表明,含 2.5 g·L-1nanoZnO 颗粒的凝胶盘的吸附容量高达 3.93±0.20mg·盘-1对 TC、3.21±0.20mg·盘-1对 OTC 和 4.62±0.22mg·盘-1对 CTC。溶液 pH 值在 5-9 范围内和离子强度(pNaCl 值)在 1-3 范围内对 nanoZnO-DGT 采样器中 TCs 的吸收均无显著影响。在所测试的质量比下,腐殖酸或单宁酸对 nanoZnO-DGT 采样器中 TC 的吸收均无显著影响。对于所有加标淡水样品,基质对 nanoZnO-DGT 采样器的性能均无明显干扰,表明 nanoZnO-DGT 采样器在加标淡水样品中存在的浓度范围内对 TCs 的吸收具有令人满意的结果。猪养殖废水中 nanoZnO-DGT 采样器的现场部署也表现出良好的精密度和准确度,表明 nanoZnO-DGT 采样器可用作原位采集环境水中 TC 类抗生素的一种有前途的方法。