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Selected dechlorination of triclosan by high-performance g-CN/BiMoO composites: Mechanisms and pathways. | LitMetric

Selected dechlorination of triclosan by high-performance g-CN/BiMoO composites: Mechanisms and pathways.

Chemosphere

School of Life and Environmental Sciences, Hangzhou Normal University, 310018, Hangzhou, Zhejiang, China; School of Engineering, Hangzhou Normal University, 310018, Hangzhou, Zhejiang, China.

Published: January 2023

AI Article Synopsis

  • Researchers are focusing on eco-friendly methods for removing triclosan (TCS), particularly due to its accumulation from wastewater during COVID-19.
  • A novel g-CN/BiMoO heterostructure catalyst was developed, achieving over 95.5% TCS removal in 180 minutes under visible light, significantly outperforming pure g-CN.
  • The study explores the catalyst’s efficiency in electron-hole separation and reveals that hydrogen substitution is likely the preferred mechanism for TCS dechlorination through theoretical calculations.

Article Abstract

Environmental-friendly and efficient strategies for triclosan (TCS) removal have received more attention. Influenced by COVID-19, a large amount of TCS contaminants were accumulated in medical and domestic wastewater discharges. In this study, a unique g-CN/BiMoO heterostructure was fabricated and optimized by a novel and simple method for superb photocatalytic dechlorination of TCS into 2-phenoxyphenol (2-PP) under visible light irradiation. The as-prepared samples were characterized and analyzed by XRD, BET, SEM, XPS, etc. The rationally designed g-CN/BiMoO (4:6) catalyst exhibited notably photocatalytic activity in that more than 95.5% of TCS was transformed at 180 min, which was 3.6 times higher than that of pure g-CN powder. This catalyst promotes efficient photocatalytic electron-hole separation for efficient dechlorination by photocatalytic reduction. The samples exhibited high recyclable ability and the dechlorination pathway was clear. The results of Density Functional Theory calculations displayed the TCS dechlorination selectivity has different mechanisms and hydrogen substitution may be more favorable than hydrogen abstraction in the TCS dechlorination hydrogen transfer process. This work will provide an experimental and theoretical basis for designing high-performance photocatalysts to construct the systems of efficient and safe visible photocatalytic reduction of aromatic chlorinated pollutants, such as TCS in dechlorinated waters.

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Source
http://dx.doi.org/10.1016/j.chemosphere.2022.137247DOI Listing

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