School of Materials and Chemistry, Southwest University of Science and Technology, Mianyang, 621010, People's Republic of China.
International Science and Technology Cooperation Laboratory of Micro-nanoparticle Application Research, Southwest University of Science and Technology, Mianyang, 621010, People's Republic of China.
Environ Sci Pollut Res Int. 2023 Sep;30(43):97195-97208. doi: 10.1007/s11356-023-28819-9. Epub 2023 Aug 17.
Lincomycin (LC) is an extensively applied broad-spectrum antibiotic, and its considerable residues in wastewater have caused a series of environmental problems, which makes degradation of LC wastewater extremely urgent. In this work, we have constructed a novel boron nitride (BN) and samarium (Sm) co-modified Ti/PbO as anode for high-performance degradation of LC wastewater. Compared with Ti/PbO, Ti/PbO-Sm, and Ti/PbO-BN electrodes, Ti/PbO-BN-Sm electrode with smaller pyramidal particles possesses higher oxygen evolution potential (2.32 V), excellent accelerated service life (103 h), and outstanding electrocatalytic activity. The single-factor experiments demonstrate that under optimized conditions (current density of 20 mA.cm, 6.0 g L NaSO, pH 9, and temperature of 30°C), removal rate and COD degradation rate of LC at 3 h have reached 92.85% and 89.11%, respectively. At the same time, degradation of LC is in accordance with the primary kinetic model. Based on the analysis of high-performance liquid chromatography-mass spectrometry (HPLC-MS), four possible degradation pathways are hypothesized. Therefore, efficient electrochemical degradation of LC by using an extremely long-life Ti/PbO electrode with high catalytic activity may be a promising method.
林可霉素(LC)是一种广泛应用的广谱抗生素,其在废水中的大量残留造成了一系列环境问题,因此,降解 LC 废水迫在眉睫。本工作构建了一种新型氮化硼(BN)和钐(Sm)共修饰钛/氧化铅(Ti/PbO)作为阳极,用于高效降解 LC 废水。与 Ti/PbO、Ti/PbO-Sm 和 Ti/PbO-BN 电极相比,具有更小的金字塔颗粒的 Ti/PbO-BN-Sm 电极具有更高的析氧电位(2.32 V)、优异的加速寿命(103 h)和出色的电催化活性。单因素实验表明,在优化条件下(电流密度为 20 mA.cm,6.0 g L NaSO,pH 9,温度为 30°C),LC 在 3 h 时的去除率和 COD 降解率分别达到 92.85%和 89.11%。同时,LC 的降解符合一级动力学模型。基于高效液相色谱-质谱(HPLC-MS)分析,假设了四种可能的降解途径。因此,使用具有高催化活性和超长寿命的 Ti/PbO 电极进行高效电化学降解 LC 可能是一种很有前途的方法。