论文标题

铁电中多步极化响应的动态缩放特性

Dynamic scaling properties of multistep polarization response in ferroelectrics

论文作者

Genenko, Yuri A., Zhukov, Sergey, Zhang, Maohua, Wang, Ke, Koruza, Jurij

论文摘要

铁电机是多功能的智能材料,在传感器技术,微机械驱动,数字信息存储等中找到应用。其最基本的属性是在应用电场下两极分化切换的能力。特别是,了解切换动力学对于数字信息存储至关重要。在这方面,时间极化响应的缩放特性在铁电的180°交换过程中众所周知,其特征在于独特的磁场依赖性局部切换时间。出乎意料的是,现在在多轴多晶铁电元中观察到这些特性,这些铁电极表现出许多平行和顺序的非180°交换过程,并具有不同的切换时间。这种行为可以通过多步随机机制和极化反转的不均匀场机理模型的结合来解释。预测缩放特性是针对四方,菱形和正骨对称对称性的多晶铁电性的,并通过(K,Na)NBO3基于7次数的时间表的(K,Na)NBO3基于NBO3的NBO3基于NBO3的小铁电陶瓷的极化动力学的测量来证明。另一方面,动态缩放属性允许深入了解微观开关机制,以及统计材料特征,另一方面,因此以高精度提供了时间极化的描述。对多步化切换机制的更深入的了解对于将来的超快和多级数字信息存储至关重要。

Ferroelectrics are multifunctional smart materials finding applications in sensor technology, micromechanical actuation, digital information storage etc. Their most fundamental property is the ability of polarization switching under applied electric field. In particular, understanding of switching kinetics is essential for digital information storage. In this regard, scaling properties of the temporal polarization response are well-known for 180°-switching processes in ferroelectrics characterized by a unique field-dependent local switching time. Unexpectedly, these properties were now observed in multiaxial polycrystalline ferroelectrics, exhibiting a number of parallel and sequential non-180°-switching processes with distinct switching times. This behaviour can be explained by a combination of the multistep stochastic mechanism and the inhomogeneous field mechanism models of polarization reversal. Scaling properties are predicted for polycrystalline ferroelectrics of tetragonal, rhombohedral and orthorhombic symmetries and exemplarily demonstrated by measurements of polarization kinetics in (K,Na)NbO3-based ferroelectric ceramic over a timescale of 7 orders of magnitude. Dynamic scaling properties allow insight into the microscopic switching mechanisms, on the one hand, and into statistical material characteristics, on the other hand, providing thereby the description of temporal polarization with high accuracy. The gained deeper insight into the mechanisms of multistep polarization switching is crucial for future ultrafast and multilevel digital information storage.

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