Dynamic scaling properties of multistep polarization response in ferroelectrics
Yuri A. Genenko, Sergey Zhukov, Maohua Zhang, Ke Wang, and Jurij, Koruza

TL;DR
This paper investigates the dynamic scaling properties of multistep polarization switching in polycrystalline ferroelectrics, revealing new behaviors and mechanisms that enhance understanding for advanced digital storage applications.
Contribution
It demonstrates the existence of scaling properties in multiaxial ferroelectrics with complex switching processes and validates these through experimental measurements over a wide timescale.
Findings
Scaling properties observed in multistep switching processes.
Experimental validation in (K,Na)NbO3-based ferroelectrics.
Insights into microscopic mechanisms of polarization reversal.
Abstract
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{\deg}-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{\deg}-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…
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