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Revolutionizing carbon chemistry: Solar-powered C(sp3 )-N bond activation and CO2 transformation via newly designed SBE-Y cutting-edge dynamic photocatalyst.
Shahin, Rehana; Yadav, Rajesh K; Verma, Rajesh K; Singh, Chandani; Singh, Satyam; Kim, Tae Wu; Gupta, Navneet K; Baeg, Jin OoK.
Afiliação
  • Shahin R; Department of Chemistry and Environmental Science, Madan Mohan Malaviya University of Technology, Gorakhpur, India.
  • Yadav RK; Department of Chemistry and Environmental Science, Madan Mohan Malaviya University of Technology, Gorakhpur, India.
  • Verma RK; Department of Mechanical Engineering, Harcourt Butler Technical University, Kanpur, India.
  • Singh C; Korea Research Institute of Chemical Technology, Daejeon, South Korea.
  • Singh S; Department of Chemistry and Environmental Science, Madan Mohan Malaviya University of Technology, Gorakhpur, India.
  • Kim TW; Department of Chemistry, Mokpo University, Muan-gun, Korea.
  • Gupta NK; Centre for Sustainable Technologies, Indian Institute of Science, Bengaluru, India.
  • Baeg JO; Korea Research Institute of Chemical Technology, Daejeon, South Korea.
Photochem Photobiol ; 2023 Dec 16.
Article em En | MEDLINE | ID: mdl-38102890
ABSTRACT
A solvent-free sulfur-bridge-eosin-Y (SBE-Y) polymeric framework photocatalyst was prepared for the first time through an in situ thermal polymerization route using elemental sulfur (S8 ) as a bridge. The addition of a sulfur bridge to the polymeric framework structure resulted in an allowance of the harvesting range of eosin-Y (E-Y) for solar light. This shows that a wider range of solar light can be used by the bridge material's photocatalytic reactions. In this context, supercharged solar spectrum enhancing light absorption and hole oxidation with sulfur bridges. This suggests that the excited electrons and holes through solar light can contribute to oxidation-reduction reactions more potently. As a result, the photocatalyst-enzyme attached artificial photosynthesis system developed using SBE-Y as a photocatalyst performs exceptionally well, resulting in high 1,4-NADH regeneration (86.81%), followed by its utilization in the exclusive production of formic acid (210.01 µmol) from CO2 and synthesis of fine chemicals with 99.9% conversion yields. The creation of more effective photocatalytic materials for environmental clean-up and other applications that depend on the solar light-driven absorption spectrum of inorganic and organic molecules could be one of the practical ramifications of this research.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article