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Synergistic cavitation and photocatalysis over layered Bi2SiO5 anchored MXene/g-C3N4 nanocomposites for accelerated sonophotocatalytic degradation of bisphenolic contaminants from aqueous environment

  • S. K.Sheik Moideen Thaha
  • , Panneerselvem Sathishkumar
  • , Ramalinga Viswanathan Mangalaraja
  • , Nagaraj Basavegowda

Producción científica: Contribución a una revistaArtículorevisión exhaustiva

Resumen

Bisphenols (BPs) are persistent endocrine-disrupting contaminants widely detected in aquatic environments due to their extensive use in polycarbonate plastics and epoxy resins. In this work, a ternary heterostructured nanocatalyst composed of Bi2SiO5, Ti3C2Tx MXene, and g-C3N4 was synthesized through a sonochemical-assisted hydrothermal approach and employed for the degradation of bisphenol A (BPA) under multi-frequency ultrasound-assisted sonophotocatalytic (MFUSP) conditions. The ternary nanocomposites were characterized using advanced analytical characterization techniques such as XRD, XPS, and TEM analyses. Consequently, Structural and microscopic observations confirmed intimate interfacial contact between Bi2SiO5 nanoparticles and layered Ti3C2Tx and g-C3N4 nanosheets which forms an efficient heterojunction nanoarchitecture. Optical analysis revealed that the incorporation of Ti3C2Tx and g-C3N4 extended the optical response of Bi2SiO5 into the visible region which led to the optical band gap to 2.8 eV. Systematic optimization of MFUSP parameters such as nanocomposite's dosage, influence of ultrasound frequency and nanocatalyst variation was performed. Under optimized conditions, Bi2SiO5/Ti3C2/g-C3N4 nanocomposites achieved 93% BPA degradation within 60 min under (20 + 40 + 80 kHz) ultrasound and blue LED irradiation. The degradation rate constant reached 4.51 × 10−2 min−1 which is ∼7.6-fold higher than commercial P25 TiO2. The enhanced degradation efficiency is attributed to synergistic cavitation effects, improved mass transfer, and efficient interfacial electron transfer between Bi2SiO5 and g-C3N4. The nanocatalysts also demonstrated effective simultaneous degradation of bisphenol A and bisphenol F in mixed systems. Mechanistic analysis indicates the Z-scheme heterojunction promotes efficient generation of reactive oxygen species which are responsible for the oxidative degradation of BPs.

Idioma originalInglés
Número de artículo138935
PublicaciónSeparation and Purification Technology
Volumen405
DOI
EstadoPublicada - 28 sept 2026
Publicado de forma externa

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