Sensors (May 2022)

Collaborative Filler Network for Enhancing the Performance of BaTiO<sub>3</sub>/PDMS Flexible Piezoelectric Polymer Composite Nanogenerators

  • Ayda Bouhamed,
  • Nathanael Jöhrmann,
  • Slim Naifar,
  • Benny Böhm,
  • Olav Hellwig,
  • Bernhard Wunderle,
  • Olfa Kanoun

DOI
https://doi.org/10.3390/s22114181
Journal volume & issue
Vol. 22, no. 11
p. 4181

Abstract

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Wearable sensors are gaining attention in human health monitoring applications, even if their usability is limited due to battery need. Flexible nanogenerators (NGs) converting biomechanical energy into electrical energy offer an interesting solution, as they can supply the sensors or extend the battery lifetime. Herein, flexible generators based on lead-free barium titanate (BaTiO3) and a polydimethylsiloxane (PDMS) polymer have been developed. A comparative study was performed to investigate the impact of multiwalled carbon nanotubes (MWCNTs) via structural, morphological, electrical, and electromechanical measurements. This study demonstrated that MWCNTs boosts the performance of the NG at the percolation threshold. This enhancement is attributed to the enhanced conductivity that promotes charge transfer and enhanced mechanical property and piezoceramics particles distribution. The nanogenerator delivers a maximum open-circuit voltage (VOC) up to 1.5 V and output power of 40 nW, which is two times higher than NG without MWCNTs. Additionally, the performance can be tuned by controlling the composite thickness and the applied frequency. Thicker NG shows a better performance, which enlarges their potential use for harvesting biomechanical energy efficiently up to 11.22 V under palm striking. The voltage output dependency on temperature was also investigated. The results show that the output voltage changes enormously with the temperature.

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