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Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies

The demands for wearable technologies continue to grow and novel approaches for powering these devices are being enabled by the advent of new energy materials and novel manufacturing strategies. In addition, decreasing the energy consumption of portable electronic devices has created a huge demand f...

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Autores principales: Mokhtari, Fatemeh, Shamshirsaz, Mahnaz, Latifi, Masoud, Foroughi, Javad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696415/
https://www.ncbi.nlm.nih.gov/pubmed/33207703
http://dx.doi.org/10.3390/polym12112697
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author Mokhtari, Fatemeh
Shamshirsaz, Mahnaz
Latifi, Masoud
Foroughi, Javad
author_facet Mokhtari, Fatemeh
Shamshirsaz, Mahnaz
Latifi, Masoud
Foroughi, Javad
author_sort Mokhtari, Fatemeh
collection PubMed
description The demands for wearable technologies continue to grow and novel approaches for powering these devices are being enabled by the advent of new energy materials and novel manufacturing strategies. In addition, decreasing the energy consumption of portable electronic devices has created a huge demand for the development of cost-effective and environment friendly alternate energy sources. Energy harvesting materials including piezoelectric polymer with its special properties make this demand possible. Herein, we develop a flexible and lightweight nanogenerator package based on polyvinyledene fluoride (PVDF)/LiCl electrospun nanofibers. The piezoelectric performance of the developed nanogenator is investigated to evaluate effect of the thickness of the as-spun mat on the output voltage using a vibration and impact test. It is found that the output voltage increases from 1.3 V to 5 V by adding LiCl as additive into the spinning solution compared with pure PVDF. The prepared PVDF/LiCl nanogenerator is able to generate voltage and current output of 3 V and 0.5 μA with a power density output of 0.3 μW cm(−2) at the frequency of 200 Hz. It is found also that the developed nanogenerator can be utilized as a sensor to measure temperature changes from 30 °C to 90 °C under static pressure. The developed electrospun temperature sensor showed sensitivity of 0.16%/°C under 100 Pa pressure and 0.06%/°C under 220 Pa pressure. The obtained results suggested the developed energy harvesting textiles have promising applications for various wearable self-powered electrical devices and systems.
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spelling pubmed-76964152020-11-29 Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies Mokhtari, Fatemeh Shamshirsaz, Mahnaz Latifi, Masoud Foroughi, Javad Polymers (Basel) Article The demands for wearable technologies continue to grow and novel approaches for powering these devices are being enabled by the advent of new energy materials and novel manufacturing strategies. In addition, decreasing the energy consumption of portable electronic devices has created a huge demand for the development of cost-effective and environment friendly alternate energy sources. Energy harvesting materials including piezoelectric polymer with its special properties make this demand possible. Herein, we develop a flexible and lightweight nanogenerator package based on polyvinyledene fluoride (PVDF)/LiCl electrospun nanofibers. The piezoelectric performance of the developed nanogenator is investigated to evaluate effect of the thickness of the as-spun mat on the output voltage using a vibration and impact test. It is found that the output voltage increases from 1.3 V to 5 V by adding LiCl as additive into the spinning solution compared with pure PVDF. The prepared PVDF/LiCl nanogenerator is able to generate voltage and current output of 3 V and 0.5 μA with a power density output of 0.3 μW cm(−2) at the frequency of 200 Hz. It is found also that the developed nanogenerator can be utilized as a sensor to measure temperature changes from 30 °C to 90 °C under static pressure. The developed electrospun temperature sensor showed sensitivity of 0.16%/°C under 100 Pa pressure and 0.06%/°C under 220 Pa pressure. The obtained results suggested the developed energy harvesting textiles have promising applications for various wearable self-powered electrical devices and systems. MDPI 2020-11-16 /pmc/articles/PMC7696415/ /pubmed/33207703 http://dx.doi.org/10.3390/polym12112697 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mokhtari, Fatemeh
Shamshirsaz, Mahnaz
Latifi, Masoud
Foroughi, Javad
Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title_full Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title_fullStr Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title_full_unstemmed Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title_short Nanofibers-Based Piezoelectric Energy Harvester for Self-Powered Wearable Technologies
title_sort nanofibers-based piezoelectric energy harvester for self-powered wearable technologies
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696415/
https://www.ncbi.nlm.nih.gov/pubmed/33207703
http://dx.doi.org/10.3390/polym12112697
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AT foroughijavad nanofibersbasedpiezoelectricenergyharvesterforselfpoweredwearabletechnologies