Impact of varying the core–shell structural sequence on the efficiency of cascade reagent-free Fenton-like oxidation: the case of magnetically recycling resorcinol–formaldehyde resins/magnetite composite microspheres

Abstract

Iron-based inorganic–organic hybrid Fenton catalysts, which recently emerged, are recognized as one of the novel materials for the deep mineralization of inert pollutants for environmental remediation in photo-assisted Fenton-like reactions, which are one of the typical advanced oxidation processes (AOPs). In this work, magnetically recycling catalysts of resorcinol–formaldehyde resins/magnetite (RF/Fe3O4) core–shell microspheres were rationally designed by tuning the core–shell sequence for visible-light-driven reagent-free Fenton-like oxidation of organic dyes. It is noted that the impact of core–shell sequence on the nano-structure and reactivity of such spherical catalysts is rarely reported. Here, although the apparent degradation efficiencies of organic dye methylene blue (MeB) by these two core–shell catalysts were similar (97.4% by RF@Fe3O4 and 98.9% by Fe3O4@RF within 20 min), the intrinsic activity of Fe3O4@RF was revealed to be superior to RF@Fe3O4 catalyst, including better total content of organic carbon (TOC) removal rate (56% vs. 42.6%), much larger normalized reaction rate constant k (0.46 vs. 0.27 min–1), improved degradation rate on anti-interference capacity against foreign ions (Cl, 98.3% vs. 80%) and its enhanced stability in acidic reaction conditions. We confirmed that the core–shell sequence imposed a significant impact on regulating the surface properties and active sites of the composite catalysts. The degradation of organic dyes followed a cascade Fenton-like process. Besides, the participation of Fe3O4 endowed the catalysts with a profitable magnetic recovery property. This work shed light on the rational construction of organic–inorganic hybrid catalysts with magnetic recycling features for the potential large-scale application in photo-involved AOPs.

Supplementary files

Article information

Article type
Paper
Submitted
24 Nov 2024
Accepted
22 Feb 2025
First published
24 Feb 2025

Dalton Trans., 2025, Accepted Manuscript

Impact of varying the core–shell structural sequence on the efficiency of cascade reagent-free Fenton-like oxidation: the case of magnetically recycling resorcinol–formaldehyde resins/magnetite composite microspheres

L. Yang, Y. Wang, T. Chen, L. Liu, Y. Cai, J. Fang and Y. Yang, Dalton Trans., 2025, Accepted Manuscript , DOI: 10.1039/D4DT03282A

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