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One-step synthesis of porous chlorine-modified graphitic carbon nitrides for efficient photocatalytic degradation of bisphenol A: DFT insights and mechanistic pathways under visible light

  • Yun Cheng Mei
  • , Tesfaye Abebe Geleta
  • , Ashkan Miri
  • , Prashanth Venkatesan
  • , Yu Chiang Chao
  • , Yutong Chen
  • , Pei Hsin Chou
  • , Ren Qian Tee
  • , Yang hsin Shih*
  • *此作品的通信作者

研究成果: 雜誌貢獻期刊論文同行評審

3   連結會在新分頁中打開 引文 斯高帕斯(Scopus)

摘要

Bisphenol A (BPA), a widely used industrial chemical, poses significant environmental and health risks due its endocrine-disrupting properties and persistence in aquatic systems. This study reports the development of a porous chlorine-modified carbon nitride (CNM-Cl) photocatalyst synthesized via a one-step thermal condensation method for efficient degradation of BPA under visible light irradiation (λ > 420 nm). Among the investigated precursor ratios, the NH₄Cl/melamine ratio of 1.0 yielded the optimal CNM-Cl, achieving complete BPA removal within 1 h and exhibiting over threefold improvement in photocatalytic activity compared with pristine CNM. The enhanced performance was attributed to the increased surface area, extended visible light absorption, and improved photocarrier separation. Systematic evaluations under varying operational and environmental conditions demonstrated the robust activity and selectivity of CNM-Cl, with radical quenching experiments identifying superoxide radicals (•O₂⁻) and singlet oxygen (¹O₂) as dominant reactive species. Interestingly, humic acid promoted BPA degradation at higher concentrations, whereas anions such as Cl⁻ and HCO₃⁻ inhibited photocatalytic reactivity. Density functional theory (DFT) calculations revealed that Cl doping induces orbital redistribution and localized electrostatic potential (ESP) asymmetry without significantly altering the bandgap, thereby enhancing charge separation and surface reactivity. CNM-Cl maintained its activity over four cycles and effectively eliminated BPA’s estrogenic activity. This integrated experimental−theoretical approach offers a scalable strategy for designing high-performance photocatalysts for environmental remediation.

原文英語
文章編號121018
期刊Journal of Environmental Chemical Engineering
14
發行號1
DOIs
出版狀態已發佈 - 2026 2月

UN SDG

此研究成果有助於以下永續發展目標

  1. SDG 3 - 健康與福祉
    SDG 3 健康與福祉

ASJC Scopus subject areas

  • 化學工程(雜項)
  • 一般化學工程
  • 環境科學(雜項)
  • 廢物管理和處置
  • 污染
  • 一般工程
  • 製程化學與技術

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