Qing Zhu, Yiran Hu, Wei Huang, Chunmei Wang, Xiaomin Dou, Jun Liu
Activating peroxymonosulfate (PMS) and enhancing its catalytic reactivity remain key challenges in advanced oxidation processes, particularly for the degradation of recalcitrant organic compounds. In this study, Fe/N co-doped biochars (NPBC) with Fe0/ferric oxide components and electron-rich N configurations in the carbon framework were synthesized to activate PMS for tylosin (TYL) degradation. A high TYL degradation efficiency of 99.9% was achieved even at a low PMS concentration (15 mg/L). The activation of PMS by NPBC involves Fe0 oxidation and Fe2+/Fe3+ redox cycling, as well as electron transfer from N components to PMS. Both non-radical pathways (primarily 1O2 and electron transfer) and radical species (mainly •OH and O2•-) contributed to TYL degradation, with the former playing a relatively more important role. Three potential TYL degradation pathways were proposed, differing primarily in the sequence of amino sugar detachment and lactone ring opening. Pathways I and II began with sugar loss followed by ring opening, whereas Pathway III started with ring opening prior to sugar detachment. Ecological toxicity assessment indicated a reduction in overall toxicity when TYL was degraded to products typically found at environmental levels. Molecular docking analyses suggested that the transformation products exhibited reduced antibacterial activity and a lower potential for promoting antibiotic-resistant bacteria. This work presents a novel strategy for PMS activation using Fe/N-doped electron-rich biochar composites. This method facilitates efficient electron transfer and promotes a synergistic reaction mechanism involving both non-radical and radical pathways, enabling effective degradation of representative antibiotics in wastewater.