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基于冷冻铸造陶瓷-聚合物复合材料的柔性有源自供电压力、剪切传感器。

Flexible and active self-powered pressure, shear sensors based on freeze casting ceramic-polymer composites.

作者信息

Xie Mengying, Zhang Yan, Kraśny Marcin J, Bowen Chris, Khanbareh Hamideh, Gathercole Nicholas

机构信息

Department of Mechanical Engineering , University of Bath , BA2 7AY , UK . Email:

State Key Laboratory of Powder Metallurgy , Central South University , 410083 , China.

出版信息

Energy Environ Sci. 2018 Oct 1;11(10):2919-2927. doi: 10.1039/c8ee01551a. Epub 2018 Jul 12.

Abstract

Self-powered flexible electronics are of particular interest and important for next generation electronics due to their light weight, flexible and self-sustainable properties. Many self-powered sensors made from piezoelectric composite materials are either inflexible or possess low piezoelectricity. In this work, we demonstrate self-powered flexible and highly active pressure and shear sensors based on freeze casting ceramic-polymer structures. A lamellar lead zirconate titanate (PZT) structure is initially developed freeze-casting and the piezoelectric composites are formed by impregnating a polydimethylsiloxane (PDMS) matrix into the aligned pore channels. The structured PZT-PDMS composites exhibited a high effective longitudinal piezoelectric coefficient ( *) of 750 pC N, which is higher than that of the monolithic ceramic due to the combination of bending and flexural effects. The use of freeze casting enables the manufacture of complex and arbitrary shaped 3D piezoelectric architectures, along with the unique advantages of low-cost and ease of fabrication. A 14 × 14 mm PZT-PDMS pressure sensor was able to bend to a small radius of 8 mm and maintain a high . Furthermore, the manufactured self-powered sensors are demonstrated in a range of applications, such as acceleration, strain and touch sensors that use the , and coefficients to detect longitudinal, transverse and shear loads. This work expands on the potential applications of freeze casting and provides new opportunities for the manufacture of future electronic sensors.

摘要

自供电柔性电子产品因其重量轻、柔韧性好和自我可持续性等特性,对下一代电子产品尤为重要且备受关注。许多由压电复合材料制成的自供电传感器要么缺乏柔韧性,要么压电性较低。在这项工作中,我们展示了基于冷冻铸造陶瓷-聚合物结构的自供电柔性且高活性的压力和剪切传感器。首先通过冷冻铸造开发出层状锆钛酸铅(PZT)结构,然后通过将聚二甲基硅氧烷(PDMS)基质浸渍到排列好的孔隙通道中来形成压电复合材料。结构化的PZT-PDMS复合材料表现出750 pC/N的高有效纵向压电系数(*),由于弯曲和挠曲效应的结合,该系数高于单片陶瓷。冷冻铸造的使用使得能够制造复杂且任意形状的三维压电结构,同时具有低成本和易于制造的独特优势。一个14×14毫米的PZT-PDMS压力传感器能够弯曲到8毫米的小半径并保持高[此处原文缺失具体参数]。此外,所制造的自供电传感器在一系列应用中得到了展示,例如利用[此处原文缺失具体系数]系数来检测纵向、横向和剪切载荷的加速度、应变和触摸传感器。这项工作拓展了冷冻铸造的潜在应用,并为未来电子传感器的制造提供了新机遇。

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