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September 20, 2025Environmental Science & Technology9 citations

Harnessing Spatiotemporal Interaction of Redox Reactions Boosts Singlet Oxygen Generation in Electrocatalytic Dual-Membrane Systems

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MGMengyao GuYGYifan GaoHDHaojie Ding

Key Points

  • The engineered dual-membrane system significantly boosts singlet oxygen production for more efficient contaminant removal.
  • In optimal configurations, the generation rate of singlet oxygen reached 371.9 μmol L–1min–1, showcasing enhanced reactive processes.
  • Redox reactions and their spatiotemporal interactions play a crucial role in modulating reactive oxygen species generation.
  • The findings provide a theoretical basis for advancing selective electrocatalytic membrane filtration technologies.

Abstract

Electrocatalytic membrane filtration (EMF) technology presents a transformative approach to efficient emerging contaminant removal by synergistically integrating electrochemical reactions with membrane separation. However, current EMF systems exhibit inadequate control and poor understanding of selective reactive oxygen species (ROS) generation, particularly singlet oxygen (1O2), which constrains target-specific degradation capability. Here, we engineered a graphite-felt-based electrocatalytic dual-membrane system to systematically reveal how anode–cathode reactions under spatiotemporal coupling regulate 1O2 generation by modulating pH and anode potential. In the optimal configuration (A–C₁), H+ and O2 were produced via oxygen evolution reaction at the upstream anode transport to the downstream cathode interface, creating an acidic environment and continuous oxygen supply conducive to 1O2 formation. Compared to the reverse configuration (C–A₁), the A–C₁ configuration enhances the generation of key intermediates (O2·– and H2O2), significantly boosting the 1O2 generation rate (371. 9 μmol L–1min–1) and achieving improved energy efficiency (17. 88 m3 order kWh–1). This study establishes spatiotemporal-interfacial regulation principles, providing a theoretical foundation for developing highly selective EMF systems.

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Cite This Study

Gu et al. (2025) studied this question.

synapsesocial.com/papers/68d469ba31b076d99fa65fcfhttps://doi.org/10.1021/acs.est.5c08644
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