Cargando…

Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors

[Image: see text] In this study, near-field electrospinning (NFES) is used to fabricate Ba(x)Sr1(–x)TiO(3) (BST)/poly(vinylidene fluoride) (PVDF) piezoelectric fiber composites with excellent mechanical properties and chemical properties. BST ceramic powder is blended with PVDF solution uniformly to...

Descripción completa

Detalles Bibliográficos
Autores principales: Pan, Cheng-Tang, Wang, Shao-Yu, Yen, Chung-Kun, Kumar, Ajay, Kuo, Shiao-Wei, Zheng, Jing-Long, Wen, Zhi-Hong, Singh, Rachita, Singh, Satya P., Khan, Muhammad Tahir, Chaudhary, Ravi Kumar, Dai, Xiaofeng, Chandra Kaushik, Aman, Wei, Dong-Qing, Shiue, Yow-Ling, Chang, Wei-Hsi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376691/
https://www.ncbi.nlm.nih.gov/pubmed/32715194
http://dx.doi.org/10.1021/acsomega.0c00805
_version_ 1783562087050510336
author Pan, Cheng-Tang
Wang, Shao-Yu
Yen, Chung-Kun
Kumar, Ajay
Kuo, Shiao-Wei
Zheng, Jing-Long
Wen, Zhi-Hong
Singh, Rachita
Singh, Satya P.
Khan, Muhammad Tahir
Chaudhary, Ravi Kumar
Dai, Xiaofeng
Chandra Kaushik, Aman
Wei, Dong-Qing
Shiue, Yow-Ling
Chang, Wei-Hsi
author_facet Pan, Cheng-Tang
Wang, Shao-Yu
Yen, Chung-Kun
Kumar, Ajay
Kuo, Shiao-Wei
Zheng, Jing-Long
Wen, Zhi-Hong
Singh, Rachita
Singh, Satya P.
Khan, Muhammad Tahir
Chaudhary, Ravi Kumar
Dai, Xiaofeng
Chandra Kaushik, Aman
Wei, Dong-Qing
Shiue, Yow-Ling
Chang, Wei-Hsi
author_sort Pan, Cheng-Tang
collection PubMed
description [Image: see text] In this study, near-field electrospinning (NFES) is used to fabricate Ba(x)Sr1(–x)TiO(3) (BST)/poly(vinylidene fluoride) (PVDF) piezoelectric fiber composites with excellent mechanical properties and chemical properties. BST ceramic powder is blended with PVDF solution uniformly to prepare a solution of appropriate conductance. The parameter for BST/PVDF fiber processing is based on PVDF fibers. Scanning electron microscopy, differential scanning calorimetry, microtensile testing, Fourier transform infrared spectroscopy, and electricity test of the blends of BST/PVDF fibers are incorporated. Mechanical properties of the fibers are then measured by microtensile testing. Effects of distinct ratios of Ba/Sr and the content of Ba(0.7)Sr(0.3)TiO(3) ceramic powder on BST/PVDF piezoelectric fibers are discussed. Finally, BST/PVDF piezoelectric fiber composites are patterned on a poly(ethylene terephthalate) (PET)-based structure with an interdigital electrode as a BST/PVDF flexible energy harvester to capture ambient energy. The results show that the BST ceramic powder is ∼58–93 nm, and the diameters of piezoelectric fiber composites are ∼6.8–13.7 μm. The tensile strength of piezoelectric fiber composites is ∼74.92 MPa, and the Young’s coefficient tensile strength is ∼3.74 GPa. Mechanical properties are 2–3 times higher than those of pure PVDF piezoelectric fibers. The maximum open-circuit voltage and closed-loop current of BST/PVDF fibers reached ∼1025 mV and ∼391 nA, respectively. The electromechanical energy conversion efficiency of the BST/PVDF energy harvester is found to be 1–2 times higher than that of the PVDF energy harvester. It is confirmed and validated that the addition of BST ceramic powder could effectively increase the piezoelectric constant of PVDF piezoelectric fibers.
format Online
Article
Text
id pubmed-7376691
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-73766912020-07-24 Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors Pan, Cheng-Tang Wang, Shao-Yu Yen, Chung-Kun Kumar, Ajay Kuo, Shiao-Wei Zheng, Jing-Long Wen, Zhi-Hong Singh, Rachita Singh, Satya P. Khan, Muhammad Tahir Chaudhary, Ravi Kumar Dai, Xiaofeng Chandra Kaushik, Aman Wei, Dong-Qing Shiue, Yow-Ling Chang, Wei-Hsi ACS Omega [Image: see text] In this study, near-field electrospinning (NFES) is used to fabricate Ba(x)Sr1(–x)TiO(3) (BST)/poly(vinylidene fluoride) (PVDF) piezoelectric fiber composites with excellent mechanical properties and chemical properties. BST ceramic powder is blended with PVDF solution uniformly to prepare a solution of appropriate conductance. The parameter for BST/PVDF fiber processing is based on PVDF fibers. Scanning electron microscopy, differential scanning calorimetry, microtensile testing, Fourier transform infrared spectroscopy, and electricity test of the blends of BST/PVDF fibers are incorporated. Mechanical properties of the fibers are then measured by microtensile testing. Effects of distinct ratios of Ba/Sr and the content of Ba(0.7)Sr(0.3)TiO(3) ceramic powder on BST/PVDF piezoelectric fibers are discussed. Finally, BST/PVDF piezoelectric fiber composites are patterned on a poly(ethylene terephthalate) (PET)-based structure with an interdigital electrode as a BST/PVDF flexible energy harvester to capture ambient energy. The results show that the BST ceramic powder is ∼58–93 nm, and the diameters of piezoelectric fiber composites are ∼6.8–13.7 μm. The tensile strength of piezoelectric fiber composites is ∼74.92 MPa, and the Young’s coefficient tensile strength is ∼3.74 GPa. Mechanical properties are 2–3 times higher than those of pure PVDF piezoelectric fibers. The maximum open-circuit voltage and closed-loop current of BST/PVDF fibers reached ∼1025 mV and ∼391 nA, respectively. The electromechanical energy conversion efficiency of the BST/PVDF energy harvester is found to be 1–2 times higher than that of the PVDF energy harvester. It is confirmed and validated that the addition of BST ceramic powder could effectively increase the piezoelectric constant of PVDF piezoelectric fibers. American Chemical Society 2020-07-10 /pmc/articles/PMC7376691/ /pubmed/32715194 http://dx.doi.org/10.1021/acsomega.0c00805 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Pan, Cheng-Tang
Wang, Shao-Yu
Yen, Chung-Kun
Kumar, Ajay
Kuo, Shiao-Wei
Zheng, Jing-Long
Wen, Zhi-Hong
Singh, Rachita
Singh, Satya P.
Khan, Muhammad Tahir
Chaudhary, Ravi Kumar
Dai, Xiaofeng
Chandra Kaushik, Aman
Wei, Dong-Qing
Shiue, Yow-Ling
Chang, Wei-Hsi
Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title_full Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title_fullStr Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title_full_unstemmed Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title_short Polyvinylidene Fluoride-Added Ceramic Powder Composite Near-Field Electrospinned Piezoelectric Fiber-Based Low-Frequency Dynamic Sensors
title_sort polyvinylidene fluoride-added ceramic powder composite near-field electrospinned piezoelectric fiber-based low-frequency dynamic sensors
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7376691/
https://www.ncbi.nlm.nih.gov/pubmed/32715194
http://dx.doi.org/10.1021/acsomega.0c00805
work_keys_str_mv AT panchengtang polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT wangshaoyu polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT yenchungkun polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT kumarajay polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT kuoshiaowei polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT zhengjinglong polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT wenzhihong polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT singhrachita polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT singhsatyap polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT khanmuhammadtahir polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT chaudharyravikumar polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT daixiaofeng polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT chandrakaushikaman polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT weidongqing polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT shiueyowling polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors
AT changweihsi polyvinylidenefluorideaddedceramicpowdercompositenearfieldelectrospinnedpiezoelectricfiberbasedlowfrequencydynamicsensors