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March 12, 2026Solids2 citationsOpen Access

Mesoporosity, Mechanical Properties, and Statistical–Physics Modeling of PVA/MMT/MXene Nanocomposite Membranes for Pb2+ and Methylene Blue Adsorption

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MBMohamed BéjaouiMMMahdi MeftahWOWalid Oueslati

Key Points

  • This research aims to evaluate the mechanical properties, mesoporosity, and adsorption performance of PVA/MMT/MXene nanocomposite membranes.
  • Developed PVA/MMT/MXene nanocomposite membranes
  • Tested mechanical properties (ultimate tensile strength, Young’s modulus, swelling ratio)
  • Assessed mesoporosity using BJH porosimetry
  • Conducted adsorption experiments for Pb2+ and methylene blue at 25 °C
  • Utilized statistical–physics modeling to analyze adsorption behavior
  • Ultimate tensile strength increased from 10 to 20 MPa; Young’s modulus from 14.7 to 29.5 MPa
  • Swelling ratio reduced from 2.0 to 1.1 g·g−1
  • Cumulative pore volume rose from 0.134 to 0.448 cm3·g−1
  • Adsorption capacities reached 55 mg·g−1 for Pb2+ and 80 mg·g−1 for methylene blue
  • Pb2+ adsorption follows a monolayer regime, while methylene blue shows multilayer behavior with higher site density.

Abstract

Poly(vinyl alcohol) (PVA)/montmorillonite (MMT)/Ti3C2Tx (MXene) nanocomposite membranes (PVA/MMT/MXene) were developed and evaluated in terms of their mechanical properties, mesoporosity, and adsorption performance toward Pb2+ ions and methylene blue (MB). The incorporation of MMT and MXene resulted in a strong synergistic reinforcement, increasing the ultimate tensile strength from 10 to 20 MPa, the Young’s modulus from 14.7 to 29.5 MPa, and reducing the swelling ratio from 2.0 to 1.1 g·g−1. BJH porosimetry revealed a refined and interconnected mesoporous structure, with the cumulative pore volume increasing from 0.134 to 0.448 cm3·g−1. In adsorption experiments (mono-solute systems, 25 °C), the ternary membrane achieved high uptake capacities of 55 mg·g−1 for Pb2+ and 80 mg·g−1 for MB, outperforming binary PVA/MMT and neat PVA. Statistical–physics modeling provided microscopic descriptors consistent with the experimental isotherms: Pb2+ adsorption follows a monolayer regime (n ≈ 1), whereas MB exhibits multilayer behavior (n > 1) with a higher site density (Nm ≈ 1.6 mmol·g−1). These results demonstrate that the hybrid 2D–2D architecture of MMT and MXene significantly enhances the structural robustness, pore accessibility, and adsorption efficiency of PVA-based membranes, highlighting their potential for efficient removal of metal ions and dyes from aqueous media.

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Cite This Study

Béjaoui et al. (2026) studied this question.

synapsesocial.com/papers/69b2582a96eeacc4fcec784chttps://doi.org/10.3390/solids7020016
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