Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting
Self-polarized Gd5Si4-polyvinylidene fluoride (PVDF) nanocomposite films have been synthesized via a facile phase-inversion technique. For the 5 wt% Gd5Si4-PVDF films, the enhancement of the piezoelectric β-phase and crystallinity are confirmed using Fourier transform infrared (FTIR) spectroscopy (p...
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doaj-7042a5dd859e428a86f6c8ac6b5548152020-11-25T00:04:59ZengAIP Publishing LLCAIP Advances2158-32262017-05-0175056411056411-810.1063/1.4973596061791ADVEnhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvestingShane Harstad0Noel D’Souza1Navneet Soin2Ahmed A. El-Gendy3Shalabh Gupta4Vitalij K. Pecharsky5Tahir Shah6Elias Siores7Ravi L. Hadimani8Department of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia 23284, USADepartment of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia 23284, USAInstitute of Renewable Energy & Environment Technology, University of Bolton, Deane Road, Bolton BL3 5AB, United KingdomDepartment of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia 23284, USADivision of Materials Science and Engineering, Ames Laboratory, US Dept. of Energy, Ames, Iowa 50011-3020, USADivision of Materials Science and Engineering, Ames Laboratory, US Dept. of Energy, Ames, Iowa 50011-3020, USAInstitute of Renewable Energy & Environment Technology, University of Bolton, Deane Road, Bolton BL3 5AB, United KingdomInstitute of Renewable Energy & Environment Technology, University of Bolton, Deane Road, Bolton BL3 5AB, United KingdomDepartment of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia 23284, USASelf-polarized Gd5Si4-polyvinylidene fluoride (PVDF) nanocomposite films have been synthesized via a facile phase-inversion technique. For the 5 wt% Gd5Si4-PVDF films, the enhancement of the piezoelectric β-phase and crystallinity are confirmed using Fourier transform infrared (FTIR) spectroscopy (phase fraction, Fβ, of 81% as compared to 49% for pristine PVDF) and differential scanning calorimetry (crystallinity, ΔXc, of 58% as compared to 46% for pristine PVDF), respectively. The Gd5Si4 magnetic nanoparticles, prepared using high-energy ball milling were characterized using Dynamic Light Scattering and Vibrating Sample Magnetometry (VSM) to reveal a particle size of ∼470 nm with a high magnetization of 11 emu/g. The VSM analysis of free-standing Gd5Si4-PVDF films revealed that while the pristine PVDF membrane shows weak diamagnetic behavior, the Gd5Si4-PVDF films loaded at 2.5 wt% and 5 wt% Gd5Si4 show enhanced ferromagnetic behavior with paramagnetic contribution from Gd5Si3 phase. The interfacial interactions between Gd5Si4 and PVDF results in the preferential crystallization of the β-phase as confirmed via the shift in the CH2 asymmetric and symmetric stretching vibrations in the FTIR. These results confirm the magnetic Gd5Si4 nanoparticles embedded in the PVDF membrane lead to an increased β-phase fraction, which paves the way for future efficient energy harvesting applications using a combination of magnetic and piezoelectric effects.http://dx.doi.org/10.1063/1.4973596 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Shane Harstad Noel D’Souza Navneet Soin Ahmed A. El-Gendy Shalabh Gupta Vitalij K. Pecharsky Tahir Shah Elias Siores Ravi L. Hadimani |
spellingShingle |
Shane Harstad Noel D’Souza Navneet Soin Ahmed A. El-Gendy Shalabh Gupta Vitalij K. Pecharsky Tahir Shah Elias Siores Ravi L. Hadimani Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting AIP Advances |
author_facet |
Shane Harstad Noel D’Souza Navneet Soin Ahmed A. El-Gendy Shalabh Gupta Vitalij K. Pecharsky Tahir Shah Elias Siores Ravi L. Hadimani |
author_sort |
Shane Harstad |
title |
Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting |
title_short |
Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting |
title_full |
Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting |
title_fullStr |
Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting |
title_full_unstemmed |
Enhancement of 𝜷-phase in PVDF films embedded with ferromagnetic Gd5Si4 nanoparticles for piezoelectric energy harvesting |
title_sort |
enhancement of 𝜷-phase in pvdf films embedded with ferromagnetic gd5si4 nanoparticles for piezoelectric energy harvesting |
publisher |
AIP Publishing LLC |
series |
AIP Advances |
issn |
2158-3226 |
publishDate |
2017-05-01 |
description |
Self-polarized Gd5Si4-polyvinylidene fluoride (PVDF) nanocomposite films have been synthesized via a facile phase-inversion technique. For the 5 wt% Gd5Si4-PVDF films, the enhancement of the piezoelectric β-phase and crystallinity are confirmed using Fourier transform infrared (FTIR) spectroscopy (phase fraction, Fβ, of 81% as compared to 49% for pristine PVDF) and differential scanning calorimetry (crystallinity, ΔXc, of 58% as compared to 46% for pristine PVDF), respectively. The Gd5Si4 magnetic nanoparticles, prepared using high-energy ball milling were characterized using Dynamic Light Scattering and Vibrating Sample Magnetometry (VSM) to reveal a particle size of ∼470 nm with a high magnetization of 11 emu/g. The VSM analysis of free-standing Gd5Si4-PVDF films revealed that while the pristine PVDF membrane shows weak diamagnetic behavior, the Gd5Si4-PVDF films loaded at 2.5 wt% and 5 wt% Gd5Si4 show enhanced ferromagnetic behavior with paramagnetic contribution from Gd5Si3 phase. The interfacial interactions between Gd5Si4 and PVDF results in the preferential crystallization of the β-phase as confirmed via the shift in the CH2 asymmetric and symmetric stretching vibrations in the FTIR. These results confirm the magnetic Gd5Si4 nanoparticles embedded in the PVDF membrane lead to an increased β-phase fraction, which paves the way for future efficient energy harvesting applications using a combination of magnetic and piezoelectric effects. |
url |
http://dx.doi.org/10.1063/1.4973596 |
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