Spatiotemporal Magnetic Decoupling Directs Spin-Dependent Cascade ROS Evolution for Electro-Fenton Water Decontamination

Abstract Heterogeneous electro-Fenton (HEF) systems hold great potential for decentralized water purification, yet concurrently achieving high catalytic activity, structural stability, and controlled reactive oxygen species (ROS) selectivity remains challenging. Herein, we propose a spatiotemporal magnetic decoupling strategy to concurrently address these design objectives. The carbon shell spatially separated exterior Fe0 satellites from the FeNx core, eliminating deleterious short-range magnetic quenching and altering the local magnetic environment to modulate the internal Fe(III) spin state. The resulting low-spin Fe(III) sites suppressed electron back-donation into the H2O2 σ∗ antibonding orbital, favoring an additional 1O2 generation pathway. Spatial decoupling also enabled a gradient cascade activation of H2O2 across the Fe0 and FeNx domains, synergistically boosting the evolution of both •OH and 1O2, with steady-state concentrations reaching 18.25 and 5.27 μM, respectively. Consequently, the FeNx@C–Fe0-based HEF achieved complete naproxen degradation within 60 min with significantly suppressed Fe leaching (0.85 mg L–1), outperforming all comparative systems. Comprehensive characterizations and density functional theory (DFT) calculations established a definitive relationship between topological engineering and spin-state dynamics. Furthermore, the system demonstrated proof-of-concept applicability in real hospital wastewater, highlighting the potential of spatiotemporal spin-state engineering for regulating ROS evolution in HEF systems.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-10-06
DOI
https://doi.org/10.1021/acs.est.6c08534
Primary Topic
Advanced oxidation water treatment
Type
article
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article

Spatiotemporal Magnetic Decoupling Directs Spin-Dependent Cascade ROS Evolution for Electro-Fenton Water Decontamination

Zhihong Ye, Jiaqin Xiao, Fábio Gozzi, Jingwen Wang et al.
Environmental Science & Technology
Advanced oxidation water treatment
article

Spatiotemporal Magnetic Decoupling Directs Spin-Dependent Cascade ROS Evolution for Electro-Fenton Water Decontamination

Zhihong Ye, Jiaqin Xiao, Fábio Gozzi, Jingwen Wang, Tong Xu, Qiang Sun, Bingbing Wang, Pan Xia, Jun Zhai, Liying Yang
article en

Abstract

Abstract Heterogeneous electro-Fenton (HEF) systems hold great potential for decentralized water purification, yet concurrently achieving high catalytic activity, structural stability, and controlled reactive oxygen species (ROS) selectivity remains challenging. Herein, we propose a spatiotemporal magnetic decoupling strategy to concurrently address these design objectives. The carbon shell spatially separated exterior Fe0 satellites from the FeNx core, eliminating deleterious short-range magnetic quenching and altering the local magnetic environment to modulate the internal Fe(III) spin state. The resulting low-spin Fe(III) sites suppressed electron back-donation into the H2O2 σ∗ antibonding orbital, favoring an additional 1O2 generation pathway. Spatial decoupling also enabled a gradient cascade activation of H2O2 across the Fe0 and FeNx domains, synergistically boosting the evolution of both •OH and 1O2, with steady-state concentrations reaching 18.25 and 5.27 μM, respectively. Consequently, the FeNx@C–Fe0-based HEF achieved complete naproxen degradation within 60 min with significantly suppressed Fe leaching (0.85 mg L–1), outperforming all comparative systems. Comprehensive characterizations and density functional theory (DFT) calculations established a definitive relationship between topological engineering and spin-state dynamics. Furthermore, the system demonstrated proof-of-concept applicability in real hospital wastewater, highlighting the potential of spatiotemporal spin-state engineering for regulating ROS evolution in HEF systems.

Environmental Science & Technology
Chongqing University (CN), Universidade Federal da Grande Dourados (BR), Tsinghua University (CN)
Openalex Percentile: Top 23%
Advanced oxidation water treatment
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