首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >ELECTROMECHANICAL BEHAVIOR AND MICROSTRUCTURE OF HIGHLY SENSITIVE POLYANILINE/ETHYLENE VINYL ACETATE COMPOSITE PIEZO-RESISTIVE MATERIALS
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ELECTROMECHANICAL BEHAVIOR AND MICROSTRUCTURE OF HIGHLY SENSITIVE POLYANILINE/ETHYLENE VINYL ACETATE COMPOSITE PIEZO-RESISTIVE MATERIALS

机译:高灵敏性聚苯胺/乙烯醋酸乙烯酯复合压电材料的电学行为和微观结构

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The unique microano-structure of an intrinsically conducting polymer can be tuned to get higher gauge factors (GF) and reliability, which make them better materials for piezo-resistive applications than conducting carbon based composites and metallic composites. This work reports a highly sensitive conducting polyaniline (PANI)-based composite film that showed a GF ~66. This high GF was achieved by forming a particular microstructure of conducting PANI particles in a free standing film of PANI-DBSA/EVA. The paper also attempts to explain the mechanism for the observed high sensitivity using the electronic percolation theory, shape and size of the conducting particles and the changes in the microstructure, due to strain. The high sensitivity, high stability during cyclic loading and low electrical hysteresis together with high mechanical strength make PANI-DBSA/EVA conducting composite film a promising material for piezo-resistive strain sensing applications.
机译:可以对本征导电聚合物的独特微/纳米结构进行调整,以获得更高的规格系数(GF)和可靠性,这使其比用于导电碳基复合材料和金属复合材料的材料更适合压阻应用。这项工作报告了一种高敏感度的导电聚苯胺(PANI)基复合膜,显示GF〜66。通过在PANI-DBSA / EVA的独立膜中形成导电PANI颗粒的特定微结构,可以实现这种高GF。本文还尝试使用电子渗流理论,导电颗粒的形状和尺寸以及由于应变引起的微观结构变化来解释观察到的高灵敏度的机理。 PANI-DBSA / EVA导电复合膜的高灵敏度,高循环稳定性和低电子滞后性以及较高的机械强度使其成为压阻应变传感应用的有前途的材料。

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