College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.
College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou, 310014, China.
Chemosphere. 2022 Sep;302:134807. doi: 10.1016/j.chemosphere.2022.134807. Epub 2022 May 4.
Developing efficient photocatalysts based on the peroxymonosulfate (PMS) activation for effective degradation of threatening antibiotic contamination under visible light is still a challenging subject. Herein, a Co-doped BiMoO (CBMO) spherical crystals were synthesized via a facile hydrothermal method and used to degrade artificial antibiotic wastewater via PMS activation under visible light. The obtained 3 wt% Co-doped BMoO (3CBMO) can effectively remove 98.95% of norfloxacin (NOF) within 40 min, 100% of tetracycline (TC) and metronidazole (MNZ) within 30 min. Compared with the contrasting catalysts, the superior catalytic activity of 3CBMO was attributed to the synergistic effect of photocatalytic and Co(II) activated PMS degradations. Quenching tests in combination with EPR measurements revealed that the hole (h), sulfate (SO•) and hydroxyl (•OH) were the primary radicals all contributed to NOF degradation. The influences of initial concentration, catalyst dosage, PMS dosage and various interfering ions (NO, Cl, SO, and HCO) on the degradation efficiency of NOF were systematically examined. Furthermore, possible degradation pathways of NOF were proposed by LC-MS. This novel 3CBMO catalyst might be a promising candidate for degradation of the main sources of antibiotic contamination in pharmaceutical wastewater.
基于过一硫酸盐 (PMS) 激活的高效光催化剂用于可见光下有效降解威胁性抗生素污染仍然是一个具有挑战性的课题。本文通过简便的水热法合成了 Co 掺杂的 BiMoO(CBMO)球形晶体,并将其用于可见光下通过 PMS 激活来降解人工抗生素废水。所获得的 3wt% Co 掺杂的 BMoO(3CBMO)可在 40min 内有效去除 98.95%的诺氟沙星(NOF),在 30min 内可完全去除四环素(TC)和甲硝唑(MNZ)。与对比催化剂相比,3CBMO 的优越催化活性归因于光催化和 Co(II)激活 PMS 降解的协同作用。淬灭实验结合 EPR 测量表明,空穴(h)、硫酸根(SO•)和羟基(•OH)是主要的自由基,均有助于 NOF 的降解。系统研究了初始浓度、催化剂用量、PMS 用量和各种干扰离子(NO、Cl、SO 和 HCO)对 NOF 降解效率的影响。此外,通过 LC-MS 提出了 NOF 的可能降解途径。这种新型 3CBMO 催化剂可能是降解制药废水中抗生素主要污染源的有前途的候选物。