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May 3, 2026International Journal of Polymer Science0 citationsOpen Access

Thermomechanical Correlations and Morphological Evolution in PVA/LiClO 4 Composite Membranes

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YPY. M. C. PintoRLR. LavaredaRMR. M. Mendonça

Key Points

  • This research aims to understand the relationships between thermal, mechanical, and morphological properties of PVA/LiClO4 membranes.
  • Composite membranes prepared using the solvent evaporation method.
  • Morphology analyzed with SEM-EDS, identifying surface features and elemental composition.
  • Thermal properties assessed via differential scanning calorimetry and thermogravimetry.
  • PVA-5% LiClO4 has a glass transition temperature of 84.2 °C and decomposition temperature of 298.7 °C.
  • Membranes demonstrated mechanical storage capacity around 400 MPa.
  • Strain-stress analysis showed significant elastic and plastic behaviors with strains of 300-350%.

Abstract

The primary objective of this paper is to comprehend the interrelations among the morphological, thermal, and mechanical properties of composite polymeric membranes composed of polyvinyl alcohol combined with lithium perchlorate salt, (PVA‐X wt% LiClO 4 ) where X = 0%, 1%, 5%, and 10%. The composites were prepared using the solvent evaporation method. Morphology and map sum spectrum were visualized by a coupled SEM–EDS system, the technique identified the PVA′s smooth surface while spherulite particles and chlorine atoms from the ClO 4− ions are presented in higher salt concentrations. From differential scanning calorimetry and thermogravimetry studies, the PVA‐5% LiClO 4 system exhibited the maximum glass transition temperature (T g = 84.2 ° C), decomposition temperature (T D = 298.7 ° C), and crystallinity degree of 14.1%. Dynamical mechanical analysis showed high storage capacity on the order of 400 MPa, whereas strain–stress analysis revealed elastic and plastic behaviors, with samples sustaining stresses between 10 and 20 MPa and strains ranging from 300% to 350%. Therefore, these properties are studied for potential applications of these composite polymeric membranes.

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Cite This Study

Pinto et al. (2026) studied this question.

synapsesocial.com/papers/69f6e60f8071d4f1bdfc6a76https://doi.org/10.1155/ijps/2093446
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