Fabrication of Ceramic-polymer Piezo-composites with Triply Periodic Minimal Interfaces via Digital Light Processing

Kai Liu , Junchao He , Tianyang Li , Jiaming Hu , Yanying Du , Yusheng Shi , Chunzhe Yan , Zhangwei Chen , Shangyu Huang , Huajun Sun
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Abstract

The geometry of the phase interface in co-continuous piezoelectric composites is critical in improving their piezoelectric properties. However, conventional co-continuous piezoelectric composites are mostly simple structures such as wood stacks or honeycombs, which are prone to stress concentrations at the joints, thus reducing the fatigue service performance and force–electric conversion efficiency of piezoelectric composites. Such simple structures limit further improvements in the overall performance of co-continuous piezoelectric composites. In this study, based on the digital light processing 3D printing method, we investigated the influence of three different structures–the gyroid, diamond, and woodpile interfaces–on the piezoelectric and mechanical properties of co-continuous ceramic/polymer piezoelectric composites. These findings demonstrate that the gyroid and diamond interfaces outperformed the ceramic skeleton of the woodpile interface in terms of both mechanical and electrical properties. When the ceramic volume percentage was 50%, the piezo-composite of the gyroid surface exhibited the greatest hydrostatic figure of merit (HFOM), reaching 4.23×10−12 Pa−1, and its piezoelectric coefficient (d33) and relative dielectric constant (εr) reached 115 pC/N and 748, respectively. The research results lay the foundation for the application of co-continuous piezoelectric composites in underwater communication and detection.

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三周期极小界面陶瓷-聚合物压电复合材料的数字光处理
共连续压电复合材料中相界面的几何形状是提高其压电性能的关键。然而,传统的共连续压电复合材料多为木桩或蜂窝等简单结构,在接头处容易出现应力集中,从而降低了压电复合材料的疲劳使用性能和力电转换效率。这种简单的结构限制了共连续压电复合材料整体性能的进一步提高。在这项研究中,我们基于数字光处理3D打印方法,研究了三种不同结构-陀螺、金刚石和木桩界面-对共连续陶瓷/聚合物压电复合材料的压电和力学性能的影响。这些发现表明,在力学和电学性能方面,陀螺和金刚石界面优于陶瓷骨架的木桩界面。当陶瓷体积百分比为50%时,陀螺表面的压电复合材料表现出最大的流体静力性能(hfm),达到4.23×10−12 Pa−1,其压电系数(d33)和相对介电常数(εr)分别达到115 pC/N和748。研究结果为共连续压电复合材料在水下通信与探测中的应用奠定了基础。
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