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May 6, 2026Polymers0 citationsOpen Access

Solar-Driven Photocatalytic Degradation of Dye Pollutant Using MnO2-Modified Biochar via Fenton-Like Reactions

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JSJorge A. Soto SandovalARAbdullah Al RagibJKJanusz Kozinski

Key Points

  • To evaluate MnO2-modified biochar as a catalyst for the photocatalytic degradation of dye pollutants.
  • Synthesis of MnO2-modified biochar from biomass and plastic waste
  • Photocatalytic experiments under sunlight with a solar-collector reactor
  • Evaluation of degradation efficiency at different dye concentrations
  • Kinetic analysis to determine reaction behaviors
  • Achieved complete degradation of Rhodamine B at concentrations of 100-300 ppm
  • Higher dye concentrations (500 ppm) hindered degradation capacity
  • Catalytic performance enhanced by solar irradiance and reactor temperature
  • Biopolymer-derived carbon structure influenced degradation pathways
  • Catalysts remained active over multiple cycles but showed gradual decrease in effectiveness

Abstract

Manganese dioxide (MnO2) modified biochar catalysts derived from biomass and waste polymer feedstocks were synthesized and evaluated as heterogeneous Fenton-like catalysts for solar-driven degradation of Rhodamine B (RhB) in aqueous systems. Biochars produced from maple wood and plastic waste (high-density polyethylene) provided porous carbon matrices with oxygen-rich surface functionalities that enabled effective MnO2 loading and catalytic activity. Photocatalytic experiments conducted under real sunlight using a solar-collector reactor demonstrated faster RhB degradation compared to a conventional ultraviolet (UV) system, confirming the advantage of solar-driven operation. Complete RhB removal was achieved at initial concentrations of 100–300 ppm, whereas higher dye concentrations (500 ppm) exceeded the catalytic capacity within the tested reaction time. Kinetic analysis revealed catalyst-dependent reaction behaviors, indicating that degradation pathways were strongly influenced by the biopolymer-derived carbon structure and MnO2 dispersion. Degradation efficiency was correlated with solar irradiance and reactor temperature, with higher UV index conditions enhancing catalytic performance. Reusability tests showed that the catalysts remained active over multiple cycles, although gradual decreases in reaction rates and catalyst recovery were observed. These results demonstrate the potential of biopolymer-derived carbon materials as effective solar-driven catalysts for wastewater treatment applications.

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Cite This Study

Sandoval et al. (2026) studied this question.

synapsesocial.com/papers/69faa25e04f884e66b532f05https://doi.org/10.3390/polym18091119
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