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Experimental and theoretical study of catalytic dye degradation and bactericidal potential of multiple phase Bi and MoS doped SnO quantum dots. | LitMetric

AI Article Synopsis

  • The study investigates the impact of doping SnO quantum dots with 1% and 3% bismuth (Bi) and molybdenum disulfide (MoS) to enhance dye degradation and antibacterial properties.
  • The doping process reduces the recombination rate of SnO, thereby providing more active sites for methylene blue (MB) dye degradation across different pH levels and improving antimicrobial effectiveness.
  • Additionally, the research utilizes advanced modeling techniques to analyze the interactions between MB and the Bi/MoS-SnO composite, finding a strong binding affinity between the two.

Article Abstract

In the present study, different concentrations (1 and 3%) of Bi were incorporated into a fixed amount of molybdenum disulfide (MoS) and SnO quantum dots (QDs) by co-precipitation technique. This research aimed to increase the efficacy of dye degradation and bactericidal behavior of SnO. The high recombination rate of SnO can be decreased upon doping with two-dimensional materials (MoS nanosheets) and Bi metal. These binary dopants-based SnO showed a significant role in methylene blue (MB) dye degradation in various pH media and antimicrobial potential as more active sites are provided by nanostructured MoS and Bi is responsible for producing a variety of different oxygen vacancies within SnO. The prepared QDs were described morphology, optical characteristics, elemental composition, functional group, phase formation, crystallinity, and -spacing. In contrast, antimicrobial activity was checked at high and low dosages against () and the inhibition zone was calculated utilizing a Vernier caliper. Furthermore, prepared samples have expressed substantial antimicrobial effects against . To further explore the interactions between the MB and Bi/MoS-SnO composite, we modeled and calculated the MB adsorption using density functional theory and the Heyd-Scuseria-Ernzerhof hybrid (HSE06) approach. There is a relatively strong interaction between the MB molecule and Bi/MoS-SnO composite.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077344PMC
http://dx.doi.org/10.1039/d3ra00698kDOI Listing

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