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Original Research | Open Access

Phenolic contaminants generate persistent phenoxyl radicals to accelerate antibiotic degradation

Liping LuoaShiqing ZhoubJianfei ZhoucJingquan WangaHan WuaHongguang Guoa,c( )
State Key Laboratory of Intelligent Construction and Healthy Operation and Maintenance of Deep Underground Engineering, College of Architecture and Environment, Sichuan University, Chengdu, 610065, China
Hunan Engineering Research Centre of Water Security Technology and Application, College of Civil Engineering, Hunan University, Changsha, 410082, China
Key Laboratory of Leather Chemistry and Engineering (Sichuan University), Ministry of Education, Chengdu, 610065, China
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Abstract

Water pollution by coexisting multiple contaminants presents escalating challenges to environmental remediation and public health protection. In advanced oxidation processes, contaminant interactions are invariably regarded as detrimental, introducing competitive reactions and matrix interferences that diminish treatment efficiency. However, phenolic compounds—a prevalent class of recalcitrant water pollutants—possess latent oxidative capabilities that remain strategically unexploited. Whether their reactivity can be harnessed to accelerate, rather than impede, the removal of priority contaminants remains fundamentally unclear. Here we show that in the permanganate/chlorite (Mn(Ⅶ)/ClO2) system, phenolic compounds undergo a counterintuitive transformation into persistent phenoxyl radicals that enhance sulfamethoxazole degradation by 3.5- to 20-fold. Mechanistic investigations reveal that these radicals exhibit exceptional stability and selectivity, preferentially attacking target pollutants while demonstrating robust resistance to common matrix interferences—properties unattainable with conventional oxidants alone. Quantitative structure-activity relationships provide predictive frameworks for optimizing this contaminant-assisted oxidation strategy across diverse chemical scenarios. This contaminant-mediated oxidation strategy inverts the traditional paradigm of mutual interference, transforming recalcitrant phenolics from obstacles into powerful mediators. The findings open new avenues for self-adaptive remediation of multi-pollutant systems and suggest broader applications in environmental cleanup where contaminant interactions can be strategically exploited.

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Environmental Science and Ecotechnology

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Cite this article:
Luo L, Zhou S, Zhou J, et al. Phenolic contaminants generate persistent phenoxyl radicals to accelerate antibiotic degradation. Environmental Science and Ecotechnology, 2026, 30. https://doi.org/10.1016/j.ese.2026.100680

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Received: 08 July 2025
Revised: 25 February 2026
Accepted: 26 February 2026
Published: 01 March 2026
© 2026 The Authors. Chinese Society for Environmental Sciences, Harbin Institute of Technology, Chinese Research Academy of Environmental Sciences.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).