Optimal configuration of microstructure in ferroelectric materials by stochastic optimization
K.P. Jayachandran, J.M. Guedes, H.C. Rodrigues

TL;DR
This paper uses stochastic optimization combined with homogenization to identify microstructural configurations in ferroelectric ceramics that maximize piezoelectric properties, achieving nearly threefold enhancement over single crystals.
Contribution
It introduces a novel stochastic optimization approach for microstructure configuration in ferroelectric materials to optimize piezoelectricity, incorporating homogenization techniques.
Findings
Optimal grain orientation distribution enhances piezoelectric coefficient.
Configuration with c-axis distribution centered around 45° yields high piezoelectricity.
Piezoelectric coefficient nearly triples compared to single crystal.
Abstract
An optimization procedure determining the ideal configuration at the microstructural level of ferroelectric (FE) materials is applied to maximize piezoelectricity. Piezoelectricity in ceramic FEs differ significantly from that of single crystals because of the presence of crystallites (grains) possessing crystallographic axes aligned imperfectly. The piezoelectric properties of a polycrystalline (ceramic) FE is inextricably related to the grain orientation distribution (texture). The set of combination of variables, known as solution space, which dictates the texture of a ceramic is unlimited and hence the choice of the optimal solution which maximizes the piezoelectricity is complicated. Thus a stochastic global optimization combined with homogenization is employed for the identification of the optimal granular configuration of the FE ceramic microstructure with optimum piezoelectric…
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