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Cited 21 time in webofscience Cited 23 time in scopus
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Sulfur vacancies promoted highly efficient visible light photocatalytic degradation of antibiotic and phenolic pollutants over WS2/rGO heterostructure

Authors
Kumar, Dharman RanjithRanjith, Kugalur ShanmugamManoharan, MathankumarHaldorai, YuvarajHan, Young-KyuOh, Tae HwanKumar, Ramasamy Thangavelu Rajendra
Issue Date
Jan-2024
Publisher
Elsevier B.V.
Keywords
Tungsten disulfide; Sulfur vacancies; Ciprofloxacin; 4-Nitrophenol; Photocatalytic degradation
Citation
Separation and Purification Technology, v.329, pp 1 - 10
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Separation and Purification Technology
Volume
329
Start Page
1
End Page
10
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/26246
DOI
10.1016/j.seppur.2023.125172
ISSN
1383-5866
1873-3794
Abstract
Antibiotic and phenolic contaminations are severe and have become a significant source of worry in recent years. A multifunctional sulfur vacancy-induced WS2/rGO heterostructure was fabricated by a simple hydrothermal process for the photocatalytic degradation of antibiotic and phenolic compounds. The sulfur-based defects can reduce bandgap energies and enhance visible light absorption. The sulfur-enriched WS2/rGO heterostructure exhibited efficient photocatalytic activity towards Ciprofloxacin (CIP) and 4-Nitrophenol (4-NP) degradation under visible light illumination, and the deceptive rate constant is about 13 and 22 times higher than pristine WS2, and the removal efficiency was 16 and 13 times higher than pristine GO catalysts. The degradation efficiency and kinetic rate constants of 4-NP and CIP were 96.95 %, 92.30 %, and 0.113 min-1, 0.027 min-1, respectively. The excellent photocatalytic activity of WS2/rGO heterostructure was due to rGO acts as an electron mediator, and helps to accelerate charge separation and reduce the recombination rates. In addition, rGO improved the surface appearance of the heterostructure and provided more adsorption and reaction sites. The photocurrent measurement and time-resolved spectrum were used to investigate the photogenerated charge separation. Furthermore, the superoxide radical was the dominant reactive species of 4-NP and CIP degradation, as demonstrated by electron spin resonance and scavenger experiments. The possible degradation pathway and mechanism of 4-NP were proposed using liquid chromatography-mass spectroscopy.
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