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通过纳米尺度控制微观结构来增强聚合物铁电体的局部压电阻抗。

Enhancement of local piezoresponse in polymer ferroelectrics via nanoscale control of microstructure.

机构信息

Materials Science Division, Argonne National Laboratory , Argonne, Illinois 60439, United States.

出版信息

ACS Nano. 2015 Feb 24;9(2):1809-19. doi: 10.1021/nn5067232. Epub 2015 Feb 12.

Abstract

Polymer ferroelectrics are flexible and lightweight electromechanical materials that are widely studied due to their potential application as sensors, actuators, and energy harvesters. However, one of the biggest challenges is their low piezoelectric coefficient. Here, we report a mechanical annealing effect based on local pressure induced by a nanoscale tip that enhances the local piezoresponse. This process can control the nanoscale material properties over a microscale area at room temperature. We attribute this improvement to the formation and growth of β-phase extended chain crystals via sliding diffusion and crystal alignment along the scan axis under high mechanical stress. We believe that this technique can be useful for local enhancement of piezoresponse in ferroelectric polymer thin films.

摘要

高分子铁电体是一种灵活轻便的机电材料,由于其在传感器、执行器和能量收集器方面的潜在应用而受到广泛研究。然而,最大的挑战之一是其压电系数低。在这里,我们报告了一种基于纳米尺度尖端产生的局部压力的机械退火效应,该效应增强了局部压电阻抗。该过程可以在室温下控制微尺度区域的纳米级材料性能。我们将这种改善归因于在高机械应力下通过滑动扩散和沿扫描轴的晶体排列形成和生长β 相伸展链晶体。我们相信,该技术可用于增强铁电聚合物薄膜中的压电阻抗。

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