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March 14, 2026ACS Applied Materials & Interfaces3 citations

Facilitating Efficient Electro-Fenton Degradation Using a Free-Standing Membrane Electrode with Atomic-Level Fe Dispersion Fabricated by Microwave-Assisted Electrospinning

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JHJiaxin HeHPHaoran PanHLHanxiao Liu

Key Points

  • To develop an efficient electro-Fenton cathode for organic dye degradation with low environmental risk.
  • Fabrication of a free-standing cathode using microwave-assisted techniques
  • Electrospinning to create a three-dimensional network membrane
  • X-ray absorption fine structure analysis for structural evaluation
  • Toxicity assessment of degradation byproducts
  • Achieved 90.6% removal of Rhodamine B in 5 minutes and 98.6% in 10 minutes
  • Hydroxyl radicals showed higher reactivity as reactive oxygen species
  • Demonstrated low environmental risk from most degradation intermediates

Abstract

In response to the urgent demand for efficient organic dye wastewater treatment, this study introduces a novel free-standing electro-Fenton cathode with atomic-level Fe sites (FeBNC/CFM). The MIL-101(Fe) precursor is rapidly synthesized via microwave assistance, followed by the fabrication of a three-dimensional network membrane electrode through electrospinning and programmed temperature-controlled carbonization. X-ray absorption fine structure (XAFS) analysis reveals that the introduction of hexagonal boron nitride (h-BN) promotes atomic-level dispersion, forming Fe-N/Fe-B coordination motifs. This structural innovation significantly enhances hydrophilicity and stability, enabling exceptional performance in electro-Fenton degradation. The cathode rapidly removed 90.6% of Rhodamine B (RhB) within 5 min, achieving a removal efficiency of 98.6% in 10 min. Moreover, it demonstrated excellent performance in removing not only various dyes but also RhB-spiked actual wastewater. Hydroxyl radicals (·OH) and superoxide radicals (·O2-) are the primary reactive oxygen species (ROS), with ·OH exhibiting significantly higher reactivity. The active sites and degradation pathways of the RhB molecule are further elucidated via density functional theory (DFT) and liquid chromatography-mass spectrometry (LC-MS) analyses. Notably, toxicity assessment indicates low environmental risk from most of the intermediates, indicating negligible potential for secondary environmental contamination. This study provides a novel strategy for designing high-performance, stable electro-Fenton cathodes showing broad application potential in organic wastewater remediation.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/69b4adb518185d8a398017b2https://doi.org/10.1021/acsami.5c24349
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