Effects of Porosity on Piezoelectric Characteristics of Polyvinylidene Fluoride Films for Biomedical Applications.

IF 5 Q1 ENGINEERING, BIOMEDICAL
BME frontiers Pub Date : 2023-07-07 eCollection Date: 2023-01-01 DOI:10.34133/bmef.0009
Jack T Kloster, Matthew J Danley, Victor K Lai, Ping Zhao
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Abstract

Objective: The objective of this work is to study the effects of porosity on mechanical and piezoelectric properties of polyvinylidene fluoride (PVDF) films for biomedical applications. Impact Statement: By investigating the piezoelectric properties of PVDF and the porosity effect on its electromechanical performance, there is potential for further development of PVDF as a hemodynamic sensor that can lead to further technological advancements in the biomedical field, benefiting patients and physicians alike. Introduction: PVDF thin films have shown potential in the application of hemodynamic flow sensing and monitoring the effects on blood flow caused by prosthetic valve implantation via the transcatheter aortic valve replacement operation. The piezoelectric performance of PVDF films can be influenced by the porosity of the material. Methods: In this study, strain tracking was performed on thin film PVDF specimens with various levels of porosity and pore sizes to determine the mechanical properties of the specimens. The mechanical properties were used to model the PVDF material in COMSOL multiphysics software, in which compression test simulations were performed to determine the piezoelectric coefficient d33 of the PVDF. Results: A decline in the elastic modulus was found to be highly inversely correlated with porosity of the specimens and the simulation results show that elastic modulus had a much greater effect on the piezoelectric properties than Poisson's ratio. Conclusion: A combination of experimental and computational techniques was able to characterize and correlate the mechanical properties of PVDF films of varying porosities to their piezoelectric properties.

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孔隙率对医用聚偏氟乙烯薄膜压电特性的影响。
目的:研究孔隙率对医用聚偏氟乙烯(PVDF)薄膜力学性能和压电性能的影响。影响声明:通过研究PVDF的压电特性及其孔隙率对其机电性能的影响,PVDF作为一种血液动力学传感器有可能进一步发展,从而在生物医学领域带来进一步的技术进步,使患者和医生都受益。简介:PVDF薄膜在血流动力学流量传感和监测经导管主动脉瓣置换术植入人工瓣膜对血流的影响方面显示出潜力。PVDF薄膜的压电性能可能受到材料孔隙率的影响。方法:在本研究中,对具有不同孔隙率和孔径的PVDF薄膜试样进行应变跟踪,以确定试样的力学性能。在COMSOL multiphysics软件中,使用机械性能对PVDF材料进行建模,其中进行压缩试验模拟以确定PVDF的压电系数d33。结果:发现弹性模量的下降与试样的孔隙率高度负相关,模拟结果表明,弹性模量对压电性能的影响远大于泊松比。结论:实验和计算技术的结合能够表征不同孔隙率的PVDF薄膜的力学性能,并将其与压电性能联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.10
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审稿时长
16 weeks
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