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Eosin-Y and sulfur-codoped g-C3N4composite for photocatalytic applications: the regeneration of NADH/NADPH and the oxidation of sulfide to sulfoxideElectronic supplementary information (ESI) available. See DOI: 10.1039/d1cy00991e

Authors :
Singh, Pooja
Yadav, Rajesh K.
Kumar, Krishna
Lee, Yubin
Gupta, Abhishek K.
Kumar, Kuldeep
Yadav, B. C.
Singh, S. N.
Dwivedi, D. K.
Nam, Sang-Ho
Singh, Atul P.
Kim, Tae Wu
Source :
Catalysis Science & Technology; 2021, Vol. 11 Issue: 19 p6401-6410, 10p
Publication Year :
2021

Abstract

Graphitic carbon nitride (g-C3N4) is a promising two-dimensional semiconducting material that has shown potential for various applications in the field of photocatalysts due to its thermal stability and excellent electronic properties. However, pristine g-C3N4has a wide optical band gap, which limits the active absorption of solar light in the spectral region below 420 nm. One way to improve the optical character is by doping with a sulfur heteroatom to make sulfur-doped g-C3N4(S-g-C3N4), which has a smaller band gap relative to the pristine g-C3N4. Herein, we have developed a new type of S-g-C3N4composite incorporating eosin-Y (EY–S-g-C3N4) by employing the co-polymerization approach between eosin-Y (EY) and S-g-C3N4. In this composite, eosin-Y moieties act as external photosensitizing groups. The optical characteristics of EY–S-g-C3N4were investigated using density functional theory, various optical spectroscopies, and various imaging techniques. From those characterizations, it was found that the appearance of the charge-transfer state in the low band gap regime improved the light-harvesting ability relative to the g-C3N4and S-g-C3N4. The use of the EY–S-g-C3N4photocatalyst for the regeneration of NADH and NADPH showed quite excellent efficiencies of 64.38% and 81.14%, respectively. In addition, it showed the high conversion efficiency of sulfide to sulfoxide with an yield of 99.6%. This research highlights the potential application of the EY–S-g-C3N4composite in the field of organic transformation based on photoinduced conversion.

Details

Language :
English
ISSN :
20444753 and 20444761
Volume :
11
Issue :
19
Database :
Supplemental Index
Journal :
Catalysis Science & Technology
Publication Type :
Periodical
Accession number :
ejs57962391
Full Text :
https://doi.org/10.1039/d1cy00991e