National Physical Laboratory, Teddington, UK.
IEEE Trans Ultrason Ferroelectr Freq Control. 2011 Sep;58(9):1730-6. doi: 10.1109/TUFFC.2011.2010.
Electrostriction plays a central role in describing the electromechanical properties of ferroelectric materials, including widely used piezoelectric ceramics. The piezoelectric properties are closely related to the underlying electrostriction. Small-field piezoelectric properties can be described as electrostriction offset by the remanent polarization which characterizes the ferroelectric state. Indeed, even large-field piezoelectric effects are accurately accounted for by quadratic electrostriction. However, the electromechanical properties deviate from this simple electrostrictive description at electric fields near the coercive field. This is particularly important for actuator applications, for which very high electromechanical coupling can be obtained in this region. This paper presents the results of an experimental study of electromechanical coupling in piezoelectric ceramics at electric field strengths close to the coercive field, and the effects of temperature on electromechanical processes during polarization reversal. The roles of intrinsic ferroelectric strain coupling and extrinsic domain processes and their temperature dependence in determining the electromechanical response are discussed.
电致伸缩在描述铁电材料的机电性能方面起着核心作用,包括广泛应用的压电陶瓷。压电性能与基础电致伸缩密切相关。小场压电性能可以描述为电致伸缩被剩余极化抵消,剩余极化特征化铁电状态。事实上,即使是大场压电效应也可以通过二次电致伸缩准确解释。然而,在接近矫顽场的电场下,机电性能偏离了这种简单的电致伸缩描述。对于执行器应用来说,这一点尤其重要,因为在这个区域可以获得非常高的机电耦合。本文介绍了在接近矫顽场的电场强度下压电陶瓷机电耦合的实验研究结果,以及温度对极化反转过程中机电过程的影响。讨论了固有铁电应变耦合和外部分域过程及其对决定机电响应的温度依赖性的作用。