A Novel 3D-Printed (0-3) Piezocomposite Material for Sensing Applications

R. Mansour, O. Omoniyi, A. Reid, L. Liang, R. O’Leary, J. Windmill
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引用次数: 1

Abstract

The desire for highly sensitive, miniature sensors and actuators has grown in recent years. This desire has led to the recent development of 3D-printed sensors and actuators using piezocomposites. The use of 3D-printing leads to the rapid development of devices at lower costs and device personalization. This work describes the process of developing a novel 0-3 piezocomposite material, 3D – printing using a digital light processing technique, and characterization. The composite material was made using a photopolymer, grey resin and lead magnesium niobate and lead titanate (PMN-PT) with particles sizes $5 \mu \mathrm{m}$. 3D-printing of a membrane using the piezoelectric composite with high concentrations of PMN-PT was achieved with good print resolution and remarkably high $d _{33}$ coefficient of 74 pm/V, measured using the laser vibrometer technique. Thin film samples of the composites were also made using spin coating technique to produce composites with 0-3 connectivity pattern and layer thickness of $90 \mu \mathrm{m}$. The bottom-up digital light processing method used provides a narrow design space in which the composite may be selectively cured and the parameters which allow successful generation of highly piezoelectric printed parts was investigated. The microstructure of the piezocomposites was analyzed using a scanning electron micrograph.
用于传感应用的新型3d打印(0-3)压电复合材料
近年来,对高灵敏度、微型传感器和执行器的需求不断增长。这种愿望导致了最近使用压电复合材料的3d打印传感器和执行器的发展。3d打印的使用导致设备以更低的成本和设备个性化的快速发展。这项工作描述了开发一种新型0-3压电复合材料的过程,使用数字光处理技术进行3D打印,并进行表征。该复合材料由光聚合物、灰色树脂、铌酸镁铅和钛酸铅(PMN-PT)组成,粒径为$5 \mu \ mathm {m}$。利用激光测振仪技术测量了具有高浓度PMN-PT的压电复合材料的3d打印膜,具有良好的打印分辨率和非常高的$d _{33}$系数(74 pm/V)。采用自旋镀膜技术制备复合材料的薄膜样品,制备出0-3连接模式、层厚为$90 \mu \ mathm {m}$的复合材料。自下而上的数字光处理方法提供了一个狭窄的设计空间,在这个空间中,复合材料可以被选择性地固化,并研究了允许成功生成高压电打印部件的参数。利用扫描电镜对复合材料的微观结构进行了分析。
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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