Extrinsic Rayleigh coefficient and domain mobility in critical MPB compositions of high-performance piezoceramics: A revisit
Mulualem Abebe, Rajeev Ranjan

TL;DR
This study revisits the relationship between the extrinsic Rayleigh coefficient, domain mobility, and piezoelectric response in MPB ferroelectrics, revealing that high Rayleigh values do not necessarily indicate enhanced domain wall mobility, especially in lead-based systems.
Contribution
It provides a comparative analysis showing that large Rayleigh coefficients at MPBs are often due to interphase boundary motion, challenging the assumption that they directly indicate increased domain mobility.
Findings
Lead-free MPB exhibits highest domain mobility.
Large Rayleigh coefficient is not always linked to domain wall mobility.
Interphase boundary motion significantly influences piezoresponse.
Abstract
Enhanced domain mobility is considered as one of the important characteristics of morphotropic phase boundary (MPB) ferroelectrics exhibiting a very large piezoelectric response. For nearly two decades, Rayleigh analysis of dielectric and piezoelectric response at sub-coercive fields has been used as a phenomenological tool to determine the relative contribution of domain walls in influencing polar properties in these systems. The high value of the extrinsic Rayleigh coefficient at the MPB is generally attributed to enhanced domain mobility. Using coercive field as a measure of hindrance to domain mobility, in this paper, we have examined the correlation between the extrinsic Rayleigh coefficient, piezoelectric response, and coercive field (EC) by a comparative study on three different high performance piezoelectrics (i) (BaTi0.88Sn0.12)-(Ba0.7Ca0.3)TiO3, (ii) Pb(Zr,Ti)O3 and (iii)…
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Taxonomy
TopicsFerroelectric and Piezoelectric Materials · Ultrasonics and Acoustic Wave Propagation · Acoustic Wave Resonator Technologies
