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Defect engineering and electron transfer mediating dual activation for antibiotic degradation and heavy metal detoxification.

Created on 28 Jul 2026

Authors

Chao Lian, Yongli Shi, Liman Zhang, Wei Zhang, Kai Zhang

Published in

Journal of hazardous materials. Volume 515. Pages 142948. Jul 09, 2026. Epub Jul 09, 2026.

Abstract

Heterojunction photocatalysts are widely applied in advanced water treatment, yet their performance for simultaneous oxidative removal of organic pollutants and reductive detoxification of hexavalent chromium (Cr(VI)) remains constrained by insufficient interfacial activity and stability. Herein, we address this challenge by transforming industrial aluminum ash waste into a stable, nitrogen-doped carbon/Al2O3 (NC/Al2O3) composite via in situ derivation, and precisely constructing an Fe-MoS2 heterojunction catalyst (Fe-MoS2@NC/Al2O3) thereon. The resulting architecture leverages synergistic interfacial defects, a conductive 1 T/2H mixed-phase MoS2, and an accelerated Fe2 +/Fe3+ redox cycle to establish dual active sites with distinct electron-transfer channels. Combined EPR spectroscopy, chemical probe assays, and electrochemical analyses reveal a dual-channel reaction mechanism in the respective systems: (i) peroxymonosulfate (PMS) activation generates hydroxyl radicals (HO.), sulfate radicals (SO4.-) alongside direct electron transfer to oxidize and mineralize tetracycline hydrochloride (TCH); (ii) formic acid (FA) mediates hydrogen radical (H.) formation while heterojunction-facilitated electron transfer reduces toxic Cr(VI) to Cr(III). Density functional theory (DFT) calculations further elucidate the synergistic enhancement of catalytic activity by interfacial sulfur vacancies and Fe/Mo bimetallic sites. The catalyst achieved 100% removal of TCH and Cr(VI) in batch tests and exhibited exceptional stability, retaining 96.7% and 97.5% removal efficiency over 30 continuous-flow cycles. Product analysis confirmed significantly reduced environmental toxicity after TCH degradation. Collectively, this work pioneers a waste-to-catalyst approach and delivers a material that effectively decouples redox pathways, providing a scalable blueprint for advanced water treatment.

PMID:
42508082
Bibliographic data and abstract were imported from PubMed on 28 Jul 2026.

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