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Study on photocatalytic degradation and antibacterial properties of conjugated microporous polymers/TiO composite membranes. | LitMetric

Study on photocatalytic degradation and antibacterial properties of conjugated microporous polymers/TiO composite membranes.

J Colloid Interface Sci

College of Chemical Engineering, Northwest Minzu University, Key Laboratory of Environment-Friendly Composite Materials of the State Ethnic Affairs Commission, Gansu Provincial Biomass Function Composites Engineering Research Center, Key Laboratory for Utility of Environment-Friendly Composite Materials and Biomass in University of Gansu ProvinceGa, Gansu Province Research Center for Basic Sciences of Surface and Interface Chemistry, Lanzhou, Gansu 730030, PR China. Electronic address:

Published: February 2025

AI Article Synopsis

  • Conjugated microporous polymers (CMPs) are effective in photocatalysis due to their unique structures; this study introduces a hollow sphere variant modified with acetylcysteine and combined with titanium dioxide for enhanced performance.
  • A composite membrane made from these materials shows excellent hydrophilicity and photocatalytic properties, achieving a 90% degradation rate of tetracycline and high bactericidal rates against E. coli and S. aureus under visible light.
  • The hollow sphere structure and the role of titanium dioxide facilitate efficient photocatalytic reactions, with key reactive substances identified as crucial for the degradation process, highlighting the potential of CMPs in future photocatalyst development.

Article Abstract

Conjugated microporous polymers (CMPs) are widely used in the field of photocatalysis due to their unique conjugated structures and various synthesis methods. Herein, we report the design and synthesis of conjugated microporous polymers hollow spheres (CMPs-HS) superhydrophilic modified by acetylcysteine (CMPs-HS-S) and compounded with the inorganic semiconductor material titanium dioxide (CMPs-HS-S/TiO) for efficient photocatalytic degradation. To facilitate recycling, the composite membrane material was prepared by combining the materials mentioned above with PVDF membrane. The composite membrane materials had good hydrophilic and photocatalytic properties. Under visible light, the degradation rate of tetracycline (TC) (10 mg/L 180 min) reached 90 %, and the bactericidal rates for Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) were 89 % and 99.99 %, respectively. The efficient photocatalytic performance of the composite membranes could be attributed to the hollow sphere structure of CMPs and the role of TiO as a photogenic electron transfer platform. Additionally, the hydrophilicity of the membrane also helped to accelerate the occurrence of photocatalytic reactions. After electron paramagnetic resonance (EPR) detection, h, O and O were proved to be important reactive substances, which played a major role in degradation. These studies reflect the versatility of CMPs-based photocatalysts and provide a new idea for the future development of CMPs-based photocatalysts.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.10.029DOI Listing

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