Carbon-based PVDF composites for piezoelectric wearable electronics

The adoption of flexible piezoelectric sensors has garnered considerable interest with the rapid integration of artificial intelligence in wearable devices. Piezoelectric materials generate an electric field under mechanical stress, making them suitable for high integration, miniaturization, and low-power-consumption sensing devices. This review provides a comprehensive overview of carbon-based piezoelectric materials and wearable sensors. It delves into promising piezoelectric polymer materials, various carbon-based filler materials, and underlying mechanisms. Further, the design strategies of piezoelectric sensors for improved sensitivity, durability, biocompatibility, and processability are discussed. Finally, critical challenges and future directions in the field of carbon-based flexible piezoelectric wearable sensors are highlighted.

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Publication Details

Journal
Academia Nano Science Materials Technology
Published
2026-09-22
DOI
https://doi.org/10.20935/acadnano8530
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
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Carbon-based PVDF composites for piezoelectric wearable electronics

Vishnu Aggarwal, Dhiman Kalita, Puspanjali Sahu
Academia Nano Science Materials Technology
Advanced Sensor and Energy Harvesting Materials
article

Carbon-based PVDF composites for piezoelectric wearable electronics

Vishnu Aggarwal, Dhiman Kalita, Puspanjali Sahu
article en

Abstract

The adoption of flexible piezoelectric sensors has garnered considerable interest with the rapid integration of artificial intelligence in wearable devices. Piezoelectric materials generate an electric field under mechanical stress, making them suitable for high integration, miniaturization, and low-power-consumption sensing devices. This review provides a comprehensive overview of carbon-based piezoelectric materials and wearable sensors. It delves into promising piezoelectric polymer materials, various carbon-based filler materials, and underlying mechanisms. Further, the design strategies of piezoelectric sensors for improved sensitivity, durability, biocompatibility, and processability are discussed. Finally, critical challenges and future directions in the field of carbon-based flexible piezoelectric wearable sensors are highlighted.

Academia Nano Science Materials TechnologyVol. 3(3)
RMIT University (AU)
Openalex Percentile: Top 21%
Advanced Sensor and Energy Harvesting Materials
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