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article · Polymer Testing

Modification and development of optical, thermal, dielectric properties and antibacterial activity of PVA/SA blend by Ag/Se nanofillers: Nanocomposites for energy storage devices and food packaging applications

In plain language

Polyvinyl alcohol and sodium alginate blends were modified with silver and selenium nanoparticles to produce multifunctional nanocomposite films using a solution casting method. The silver nanoparticles were created through a green synthesis route using Capsicum annuum extract, whilst the selenium nanoparticles were fabricated via a sol-gel process. Structural analysis demonstrated complexation between the polymer matrix and the nanofillers, alongside a decrease in polymer crystallinity. Adding the nanofillers enhanced thermal stability, narrowed the optical energy gap, and increased both the dielectric constant and dielectric loss. Furthermore, the nanocomposite films displayed broad antibacterial activity against both Gram-positive and Gram-negative bacteria, with the effect strengthening as nanofiller content rose. These combined physical, electrical, and biological enhancements suggest potential utility in electronic components and protective packaging materials.

Key takeaways

  • Silver nanoparticles were produced via a green synthesis route using Capsicum annuum extract alongside sol-gel selenium nanoparticles.
  • Incorporating silver and selenium nanofillers into the polymer blend improved its thermal stability and reduced its optical band gap.
  • The nanofillers increased the dielectric constant and dielectric loss of the composite films.
  • The nanocomposites showed broad antibacterial activity against Gram-positive and Gram-negative bacteria that intensified with higher nanofiller concentrations.

Why it matters

Developing materials that integrate improved electrical storage capacities, thermal endurance, and biological protection addresses challenges across multiple sectors. By enhancing the optical, dielectric, and antibacterial characteristics of polymer blends using plant-assisted nanoparticle synthesis, this research points towards safer, versatile materials capable of protecting perishable goods or supporting the development of compact electronic components.

Commercialisation angle

This work is at an early experimental stage, demonstrated through laboratory synthesis and benchtop testing. The findings could enable functional films for manufacturers of high-density energy storage units, flexible electronics, antibacterial food packaging, and biomedical devices. Commercial adoption will require further formulation optimisation, scaled manufacturing trials beyond solution casting, and regulatory compliance testing for food contact or clinical environments.

AI-generated from the published abstract. Always read the original work before citing.

Abstract

Silver nanoparticles (Ag NPs) were synthesized using Capsicum annuum extract, which is a cost-effective and green technique. At the same time, selenium nanoparticles (Se NPs) were prepared by sol-gel technique. Then, a series of PVA/SA blend samples filled with different contents of Ag–Se nanoparticles were prepared via the solution casting way. The nanocomposite films were investigated using different measurements. XRD scans of the nanocomposites displayed a decrease in the crystallinity of the PVA/SA blend with increasing the content of Ag–Se NPs as nanofillers in the PVA/SA matrix. FT-IR spectra indicated the complexation and positive interactions between the PVA/SA blend and Ag–Se NPs. The thermal stability of the polymeric samples was improved after the addition of the nanofiller (Ag–Se NPs), as shown by TGA scans. Moreover, the indirect/direct optical energy gap decreased from 3.96/5.28 to 2.73/3.59 eV with increasing concentrations of Ag–Se NPs, confirming the improvement in the optical properties of the filled polymeric samples, as indicated by UV/visible spectra. Dielectric studies revealed that the filling of Ag–Se NPs increases the defects and leads to a greater number of dipoles within the blend and, thus, an increase in the dielectric constant and dielectric loss of the nanocomposite samples. The antibacterial test showed that all filled samples had broad antibacterial activity against Gram-positive and Gram-negative bacteria compared to pure PVA/SA blend and that it was linearly related to the nanofillers concentrations in the polymeric matrix. Improvements in thermal, optical, and electrical properties make the present nanocomposite samples suitable for multiple functions in many applications, such as high-density energy storage and flexible electronic devices. In contrast, the enhancement in the antibacterial activity could indicate that these nanocomposites can also be used for antibacterial packaging and biomedical purposes.

Research topics

  • Polymer Nanocomposite Synthesis and Irradiation
  • Conducting polymers and applications
  • Advanced Battery Materials and Technologies

Sustainable Development Goals

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DOI: 10.1016/j.polymertesting.2023.108258

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