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February 19, 2026Environmental Science and Pollution Research1 citations

Light-independent dye degradation using MoS2-Bi2O3 nanocomposites: a dual-mode approach for wastewater treatment

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AVAnnadurai VarshaPNPardhasaradhi NandiganaSPSubhendu K. Panda

Key Points

  • The aim is to evaluate the effectiveness of MoS2-Bi2O3 nanocomposites for degrading methylene blue in wastewater treatment.
  • Synthesis of MoS2-Bi2O3 nanocomposites via hydrothermal method
  • Characterization using XRD, FESEM, HR-TEM, XPS, BET, UV-Vis, UPS, EPR, and EIS analyses
  • Testing dual-mode degradation under visible light and dark conditions
  • MoS2-1.5Bi2O3 composite achieved 95% methylene blue degradation in 30 min under visible light
  • 98% degradation of methylene blue at 10 ppm in dark conditions due to strong adsorption
  • Enhanced performance attributed to efficient charge transfer and generation of reactive oxygen species

Abstract

Developing multifunctional and energy-efficient materials for sustainable wastewater treatment is an important challenge. In this study, a series of MoS 2 -Bi 2 O 3 nanocomposites was synthesised via a hydrothermal method and evaluated for their dual-mode degradation of methylene blue (MB) under visible-light and dark conditions. Structural, morphological, and compositional properties were systematically investigated using XRD, FESEM, HR-TEM, XPS, BET, UV–Vis, UPS, EPR, and EIS analyses. The results confirmed the formation of well-coupled MoS 2 -1.5Bi 2 O 3 type-II heterojunctions with increased surface area and improved electronic structures, enabling efficient charge separation. Among the samples, the MoS 2 -1.5Bi 2 O 3 composite showed the best performance, achieving 95% MB degradation within 30 min under visible light with a rate constant of 0.08289 min −1 . Notably, it also removed 98% of MB at low dye concentration (10 ppm) in the absence of light due to strong adsorption and surface-mediated reactions. Enhanced activity was attributed to improved charge transfer and reactive oxygen species generation. These results highlight the potential of MoS 2 -Bi 2 O 3 composites as low-energy, multifunctional materials for sustainable wastewater treatment.

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Cite This Study

Varsha et al. (2026) studied this question.

synapsesocial.com/papers/6996712d80e1323b05ec0409https://doi.org/10.1007/s11356-026-37472-x
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