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March 14, 2026Advanced Composites and Hybrid Materials12 citationsOpen Access

Visible light assisted magnetic COF/HKUST/CoFe2O4 composite as a novel photocatalyst: green synthesis and efficient degradation of pollutants (dye and pharmaceutical) in water

BRBahareh RabeieNMNiyaz Mohammad MahmoodiHKHossein Kazemian

Key Points

  • The research aims to develop a novel magnetic photocatalyst for effective pollutant degradation in water using visible light.
  • Synthesis of COF/HKUST/CoFe2O4 composites with varying ratios
  • Characterization through FTIR, XRD, SEM, TEM, and more
  • Degradation tests on doxycycline and methylene blue under visible light
  • Kinetic modeling of degradation rates and scavenging assays to identify active species
  • Achieved 95% degradation of 90 mg/L doxycycline in 180 min
  • Achieved 97% degradation of 20 mg/L methylene blue in 150 min
  • Second-order degradation kinetics for doxycycline and first-order for methylene blue
  • Photogenerated holes identified as the main oxidative species with efficient charge separation
  • Maintained over 72% degradation efficiency over five cycles for recyclability

Abstract

This study reports the facile, green synthesis of ternary magnetic photocatalyst composites (COF/HKUST/CoFe2O4) with tunable COF: HKUST ratios, integrating an amide-based covalent organic framework, the metal-organic framework (HKUST-1), and CoFe2O4 nanoparticles. The hybrid was comprehensively characterized by FTIR, XRD, SEM, MAP and EDX, TEM, VSM, AFM, PL and DRS. The optimized COF/HKUST/CoFe2O4 composite achieved 95% degradation of 90 mg/L doxycycline (DOX) within 180 min and 97% removal of 20 mg/L methylene blue (MB) in 150 min under visible-light irradiation. This efficacy stems from synergistic heterointerface interactions that promote efficient charge separation, accelerated electron transfer, and suppressed recombination. Kinetic modeling confirmed second-order degradation for DOX and first-order for MB, while scavenging assays identified photogenerated holes (h⁺) as the dominant oxidative species, followed by hydroxyl radicals and superoxide anions. Notably, the composite enables straightforward magnetic separation, and robust recyclability, retaining > 72% pollutant degradation efficiency over five consecutive cycles. This work advances sustainable wastewater remediation by providing a low-cost, scalable photocatalyst that aligns with circular economy principles and United Nations Sustainable Development Goal 6, offering a versatile platform for mitigating antibiotic resistance and dye-induced aquatic toxicity.

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Cite This Study

Rabeie et al. (2026) studied this question.

synapsesocial.com/papers/69b4fac6b39f7826a300b690https://doi.org/10.1007/s42114-026-01696-9
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