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February 11, 2026Angewandte Chemie0 citations

Photoswitch Mediated Electron Highway Driving Direct Pollutant‐to‐Oxidant Electron Transfer in Ultrafast Fenton‐Like Reactions

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ZZZhi‐Quan ZhangBZBin‐Bin ZhangJWJing Wang

Key Points

  • This research aims to explore a novel photoswitch-mediated electron transfer mechanism for enhancing pollutant degradation in photocatalytic systems.
  • Introduced a photoswitch-mediated electron transfer mechanism involving bismuth oxyiodide as a catalyst.
  • Conducted experiments under visible-light irradiation to observe degradation rates of electron-rich pollutants.
  • Carried out mechanistic analysis including frontier molecular orbital calculations to illustrate electron extraction processes.
  • Achieved pollutant degradation rates of less than 2 minutes for sulfamethoxazole.
  • Demonstrated over 98% pollutant removal efficiency across various oxidants and complex matrix conditions.
  • Showed the mechanism allows precise optical control over reaction processes for sustainable treatment.

Abstract

ABSTRACT Traditional heterogeneous photocatalytic systems coupled with oxidant activation hold great promise for environmental remediation but are constrained by radical scavenging and nonselective oxidation. Here, we introduce an overlooked photoswitch‐mediated electron transfer (PSMET) mechanism that circumvents reactive oxygen species by enabling direct, ultrafast electron transfer from pollutants to oxidants through a photoactive mediator. Using environmentally benign bismuth oxyiodide as a model catalyst under visible‐light irradiation, we achieve unprecedented degradation rates for various electron‐rich pollutants such as sulfamethoxazole (t 1/2 98% pollutant removals even in complex aqueous matrices and continuous‐flow systems. Furthermore, the mechanism allows precise optical control over reaction initiation and termination, offering unparalleled spatiotemporal regulation for sustainable wastewater treatment. Our findings redefine photocatalytic oxidation paradigms and open new pathways toward energy‐efficient, optically programmable, and environmentally sustainable remediation technologies.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/698c1d1d267fb587c655fa43https://doi.org/10.1002/ange.202521687
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