College of Science and Technology, Hebei Agricultural University, Huanghua, 61100, China.
College of Science and Technology, Hebei Agricultural University, Huanghua, 61100, China.
Environ Res. 2024 Dec 1;262(Pt 2):119891. doi: 10.1016/j.envres.2024.119891. Epub 2024 Aug 31.
Sulfate-radical-mediated photocatalysis technology peroxymonosulfate (PMS) activation via visible light irradiation shows great promise for water treatment applications. However, its effectiveness largely depends on the bifunctional performance of photocatalysis and PMS activation provided by the catalysts. In this study, we successfully synthesized a novel S-scheme MoS/CoO (MC) heterojunction composite by a hydrothermal method and employed it for the first time to activate PMS for ofloxacin (OFX) degradation under visible light irradiation. The MC-5/PMS/Vis system achieved an impressive 85.11% OFX degradation efficiency within 1 min and complete OFX removal within 15 min under optimal conditions, with an apparent first-order kinetics rate constant of 0.429 min. Reactive species trapping experiments and electron spin resonance analysis identified O, h, and •O as the primary active species responsible for OFX degradation. Photoelectrochemical analyses and density functional theory calculations indicated the formation of a built-in electric field between MoS and CoO, which enhanced the separation and migration of photoinduced carriers. Additionally, the Co-Mo interaction further increased the yield of dominant reactive species, thereby boosting photocatalytic activity. This work underscores the potential of visible-light-assisted PMS-mediated photocatalysis using CoO-based catalysts for effective pollutant control.
硫酸盐自由基介导的光催化技术通过可见光照射激活过一硫酸盐 (PMS) 在水处理应用中显示出巨大的前景。然而,其有效性在很大程度上取决于光催化剂和 PMS 激活的双功能性能,这是由催化剂提供的。在这项研究中,我们成功地通过水热法合成了一种新型 S 型 MoS/CoO (MC) 异质结复合材料,并首次将其用于可见光照射下激活 PMS 降解氧氟沙星 (OFX)。在最佳条件下,MC-5/PMS/Vis 体系在 1 分钟内实现了令人印象深刻的 85.11% OFX 降解效率,在 15 分钟内完全去除 OFX,表观一级动力学速率常数为 0.429 min。活性物质捕获实验和电子自旋共振分析表明,O、h 和 •O 是 OFX 降解的主要活性物质。光电化学分析和密度泛函理论计算表明,MoS 和 CoO 之间形成了内置电场,增强了光生载流子的分离和迁移。此外,Co-Mo 相互作用进一步增加了主要活性物质的产率,从而提高了光催化活性。这项工作强调了基于 CoO 的催化剂可见光辅助 PMS 介导的光催化在有效控制污染物方面的潜力。