功勋
压电
材料科学
铁电性
各向异性
机电耦合系数
复合材料
能量收集
陶瓷
流体静力平衡
联轴节(管道)
铁电陶瓷
背景(考古学)
传感器
能量(信号处理)
声学
光电子学
物理
光学
电介质
古生物学
生物
量子力学
作者
Chris Bowen,V. Yu. Topolov,Yan Zhang,А. А. Панич
标识
DOI:10.1002/ente.201700623
摘要
Abstract The physical and microgeometric factors that are able to improve the piezoelectric performance, anisotropy, and energy‐harvesting characteristics of modern 1‐3‐type composites based on ferroelectrics are discussed. The composite connectivity patterns of particular interest for this study include 1‐3‐0, 1‐0‐3, and 1‐2‐2. The active components of the studied composites are chosen from conventional perovskite‐type ferroelectric ceramics, lead‐free materials, or domain‐engineered single crystals, all of which exhibit particularly intriguing electromechanical properties. Examples of the large anisotropy of piezoelectric coefficients, electromechanical coupling factors, squared figures of merit, and large hydrostatic parameters of the three‐component 1‐3‐type composites are considered in the context of their piezotechnical applications. The applications of these materials include piezoelectric transducers, sensors, energy‐harvesting, and hydroacoustic devices.
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