Insight into interface-mediated electron transfer nonradical oxidation of β-diketones in iron oxide heterogeneous Fenton systems

Iron oxide-based heterogeneous Fenton systems are pivotal advanced oxidation technologies. Current studies demonstrate that pollutants incapable of complexing with surface Fe(III) are degraded via the hydroxyl radical (HO•) pathway, while carboxylic compounds follow a non-radical direct electron transfer mechanism. However, pollutant structural evolution during electron transfer remains unclear, and conventional monocarboxylic model pollutants cannot fully reveal Fe(III)-organic bond cleavage and oxidation pathways after complexation. In this work, β‑diketones with strong iron‑complexing capacity were selected as target contaminants and degraded in a ferrihydrite (Fhy)/H 2 O 2 system. β‑diketones exhibited excellent degradation efficiency; the pseudo‑first‑order kinetic constant of benzoylacetone (BzAc) was 12 times that of phenol and 8 times that of nitrobenzene. Reactive species tests verified that HO•, Fe IV =O and 1 O 2 were not the dominant active species. Six BzAc oxidation products were identified, all generated via inner‑sphere electron transfer. Acidic/weakly alkaline conditions and common anions Cl - and NO 3 - exerted negligible impacts, while OH - and SO 4 2- significantly inhibited degradation. Fhy catalytic activity declined after cycles but was effectively restored by H 2 O 2 regeneration. This study advances the understanding of non‑radical oxidation mechanisms and structure‑dependent degradation pathways in iron‑based Fenton‑like systems.

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Publication Details

Journal
Journal of Hazardous Materials
Published
2026-09-19
DOI
https://doi.org/10.1016/j.jhazmat.2026.143599
Primary Topic
Advanced oxidation water treatment
Type
article
Field-Weighted Citation Impact
0.00

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article

Insight into interface-mediated electron transfer nonradical oxidation of β-diketones in iron oxide heterogeneous Fenton systems

Jieshu Qian, Ji Luo, Wen Huang, Junhua Qian et al.
Journal of Hazardous Materials
Advanced oxidation water treatment
article

Insight into interface-mediated electron transfer nonradical oxidation of β-diketones in iron oxide heterogeneous Fenton systems

Jieshu Qian, Ji Luo, Wen Huang, Junhua Qian, Lei Chen, Ruizhen Li, Chunguang Zhu
article en

Abstract

Iron oxide-based heterogeneous Fenton systems are pivotal advanced oxidation technologies. Current studies demonstrate that pollutants incapable of complexing with surface Fe(III) are degraded via the hydroxyl radical (HO•) pathway, while carboxylic compounds follow a non-radical direct electron transfer mechanism. However, pollutant structural evolution during electron transfer remains unclear, and conventional monocarboxylic model pollutants cannot fully reveal Fe(III)-organic bond cleavage and oxidation pathways after complexation. In this work, β‑diketones with strong iron‑complexing capacity were selected as target contaminants and degraded in a ferrihydrite (Fhy)/H 2 O 2 system. β‑diketones exhibited excellent degradation efficiency; the pseudo‑first‑order kinetic constant of benzoylacetone (BzAc) was 12 times that of phenol and 8 times that of nitrobenzene. Reactive species tests verified that HO•, Fe IV =O and 1 O 2 were not the dominant active species. Six BzAc oxidation products were identified, all generated via inner‑sphere electron transfer. Acidic/weakly alkaline conditions and common anions Cl - and NO 3 - exerted negligible impacts, while OH - and SO 4 2- significantly inhibited degradation. Fhy catalytic activity declined after cycles but was effectively restored by H 2 O 2 regeneration. This study advances the understanding of non‑radical oxidation mechanisms and structure‑dependent degradation pathways in iron‑based Fenton‑like systems.

Journal of Hazardous MaterialsVol. 517
Wuxi Taihu Hospital (CN), Sichuan University of Science and Engineering (CN)
National Natural Science Foundation of China, Sichuan University of Science and Engineering, Applied Basic Research Program of Sichuan Province
Openalex Percentile: Top 20%
Advanced oxidation water treatment
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