电致伸缩
材料科学
压电
机电耦合系数
离子键合
单晶
凝聚态物理
立方氧化锆
电场
晶界
压电系数
复合材料
放松(心理学)
电介质
导电体
陶瓷
Crystal(编程语言)
工作(物理)
基质(水族馆)
联轴节(管道)
复合数
纳米技术
执行机构
化学物理
晶体结构
温度系数
同种类的
多孔性
作者
Zhuwu Yi,Kai Pan,Chaoming Hu,Luocheng Liao,Zhijian He,Ziwei Guo,Yibao Wu,Changxing Zhao,Shuhong Xie
摘要
ABSTRACT Ionic conductors exhibiting giant electromechanical responses have emerged as promising alternatives to lead‐based relaxor ferroelectrics for high‐resolution actuators and sensors. However, the role of long‐range oxygen‐vacancy migration in governing electromechanical properties remains unclear and even controversial. Yttria‐stabilized zirconia single crystal (SC‐YSZ) provides an ideal model system to elucidate the origin of electrostriction and piezoelectricity with oxygen‐vacancy migration, owing to the absence of grain boundaries and substrate constraints. Here, atomic force microscopy (AFM) is employed to probe the electromechanical coupling responses of SC‐YSZ, displaying pronounced orientation‐dependent features and non‐intrinsicity in [100]‐, [110]‐, and [111]‐oriented SC‐YSZs. Notably, the giant electrostrictive coefficient | M 33 | of 5.82 × 10 −17 m 2 V −2 and remarkable pseudo‐piezoelectric coefficient | d 33 | of 218 pm V −1 are obtained at the frequency of 10 mHz in [100]‐oriented SC‐YSZ. Local relaxation measurements, macroscopic ionic conductivity, and first‐principles calculations reveal that the orientation‐dependent electrostrictive and pseudo‐piezoelectric responses arise from the long‐range migration of oxygen vacancies, governed by direction‐dependent migration difficulty under electric fields. This work provides direct evidence linking giant electromechanical responses with long‐range oxygen‐vacancy migration, and highlights that such effects in SC‐YSZ cannot be neglected when employed as substrates or composite layers in electroactive materials and device systems.
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