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February 14, 20260 citationsOpen Access

Flexible Electrospun PVDF/PAN/Graphene Nanofiber Piezoelectric Sensors for Passive Human Motion Monitoring

HCHasan Ali CIRIKSelçuk UniversityYKYasemin Gündoğdu KabakciSelçuk UniversityMKM. A. Basyooni-M. Kabatas

Key Points

  • To evaluate the efficacy of PVDF/PAN/Graphene nanofiber sensors for detecting human body motion.
  • Fabrication of piezoelectric sensors via electrospinning methods.
  • Use of FTIR spectroscopy to assess the β-phase in PVDF.
  • Incorporation of graphene and lithium phosphate to enhance conductivity and piezoelectric response.
  • Development of custom testing platforms to simulate mechanical stimuli such as finger bending.
  • Sensors produced stable voltages of 25-30 mV, 53-60 mV, and 80-90 mV under applied pressures of 40, 80, and 120 mmHg, respectively.
  • Demonstrated good repeatability and an adequate signal-to-noise ratio.
  • Showed potential for wearable technology in monitoring subtle physiological signals.

Abstract

Flexible piezoelectric sensors based on electrospun poly(vinylidene fluoride) (PVDF)/polyacrylonitrile (PAN)/graphene nanofibers were fabricated and evaluated for passive human body motion detection. Optimized electrospinning yielded smooth, continuous fibers with diameters of 200–250 nm and uniform films with thicknesses of 20–25 µm. Fourier transform infrared (FTIR) spectroscopy confirmed a high fraction of the piezoelectrically active β-phase in PVDF, which was further enhanced by post-deposition thermal treatment. Graphene and lithium phosphate were incorporated to improve electrical conductivity, β-phase nucleation, and piezoelectric response, while PAN provided mechanical reinforcement and flexibility. Custom test platforms were developed to simulate low-amplitude mechanical stimuli, including finger bending and pulsatile pressure. Under applied pressures of 40, 80, and 120 mmHg, the sensors generated stable millivolt-level outputs with average peak voltages of 25–30 mV, 53–60 mV, and 80–90 mV, respectively, with good repeatability and an adequate signal-to-noise ratio. These results demonstrate that PVDF/PAN/graphene nanofiber films are promising candidates for flexible, wearable piezoelectric sensors capable of detecting subtle physiological signals, and highlight the critical roles of electrospinning conditions, functional additives, and post-processing treatments in tuning their electromechanical performance.

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Cite This Study

CIRIK et al. (2026) studied this question.

synapsesocial.com/papers/699011522ccff479cfe57d84https://doi.org/10.5445/ir/1000190472
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