Demand for thin films of various functional materials is increasing due to the miniaturization of electronic devices to nanometer scales. Nano-sized thin films can be defined as material in reduced dimensions, having at least one dimension ~100 nm or less. Due to reduced dimensions, the materials exhibit unique characteristics, andNanocomposite theEnergy harvesting characteristicsBiomedical are completely different from bulk dimensions, thus categorized as SMART materialsSmart materials. Conjoining these characteristics, the present study involved the use of partially fluorinated polymers, such as PVDFPolyvinylidene fluoride (PVDF), for their piezoelectricPiezoelectric characteristics. The study reported in this presentation is to assess the optimum concentration of PVDFPolyvinylidene fluoride (PVDF) that is required to exhibit a high degree of polarity and consequently improved piezoelectricPiezoelectric properties. Under the current investigation, PVDFPolyvinylidene fluoride (PVDF) thin films are fabricated with various concentrations of PVDFPolyvinylidene fluoride (PVDF) and characterized for their electrical, mechanical, and optical properties for their potential use as smart materialsSmart materials for energy harvestingEnergy harvesting and biomedical applicationsBiomedical application.

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Smart Nanocomposites for Energy Harvesting and Biomedical Sensing Applications

  • Angela Davis,
  • Ashok Batra,
  • Padmaja Guggilla,
  • Clyde Varner,
  • Ashok Vaseashta

摘要

Demand for thin films of various functional materials is increasing due to the miniaturization of electronic devices to nanometer scales. Nano-sized thin films can be defined as material in reduced dimensions, having at least one dimension ~100 nm or less. Due to reduced dimensions, the materials exhibit unique characteristics, andNanocomposite theEnergy harvesting characteristicsBiomedical are completely different from bulk dimensions, thus categorized as SMART materialsSmart materials. Conjoining these characteristics, the present study involved the use of partially fluorinated polymers, such as PVDFPolyvinylidene fluoride (PVDF), for their piezoelectricPiezoelectric characteristics. The study reported in this presentation is to assess the optimum concentration of PVDFPolyvinylidene fluoride (PVDF) that is required to exhibit a high degree of polarity and consequently improved piezoelectricPiezoelectric properties. Under the current investigation, PVDFPolyvinylidene fluoride (PVDF) thin films are fabricated with various concentrations of PVDFPolyvinylidene fluoride (PVDF) and characterized for their electrical, mechanical, and optical properties for their potential use as smart materialsSmart materials for energy harvestingEnergy harvesting and biomedical applicationsBiomedical application.