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Self-assembled bacterial cellulose-based photo-enzyme coupled system enabled by visible light-driven for efficient dye degradation. | LitMetric

AI Article Synopsis

  • A visible light-driven biomass photo-enzyme system was developed using g-CN and immobilized laccase through metal-organic framework (MOF) to enhance dye degradation.
  • The structured bacterial cellulose (BC) supports the stable integration of g-CN and MOF while improving the reusability of the system and preventing direct contact between photocatalysts and enzymes.
  • The system demonstrates a high degradation efficiency of 100% for methylene blue and 96.1% for rhodamine B in just 10 minutes, indicating its potential for advanced wastewater treatment.

Article Abstract

To achieve efficient dye degradation, we reported a visible light-driven biomass photo-enzyme coupled system, which was constructed by assembling g-CN during in situ culture and immobilizing laccase via metal-organic framework (MOF). Benefited from the network and porous structure of bacterial cellulose (BC), the g-CN could be stably interspersed, and MOF grew g-CN/BC to encapsulate laccase. BC improves the reusability of the system, while combined with MOF encapsulation, avoiding direct contact between photo- and enzyme- catalysts. Importantly, thanks to the existence of electron transfer from photocatalysis to enzyme, the photogenerated electron hole recombination within the photocatalyst reduced, improving catalyzed reaction efficiency. The degradation efficiency of the catalysis system within 10 min for methylene blue and rhodamine B could reach 100 % and 96.1 %, respectively, which could rapidly degrade dye and recycle for more than 10 times. This research can shine new light on the development of advanced wastewater treatment.

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Source
http://dx.doi.org/10.1016/j.biortech.2024.131324DOI Listing

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