Emergent polar order from interlayer microstrain in layered perovskites

Ferroelectric materials with switchable polarization and nonlinear dielectric responses are promising candidates for reconfigurable communication systems. However, their practical use is limited by an inherent trade-off: large dielectric tunability is usually accompanied by high dielectric permittivity and increased loss. Layered perovskite oxides such as Sr 2 Ta 2 O 7 exhibit intrinsically low dielectric permittivity and low loss, but their centrosymmetric structure limits tunability. Here, we introduce subtle interlayer microstrain in (Ca x Sr 1- x ) 2 Ta 2 O 7 via site-selective Ca substitution. The resulting microstrain gradients and asymmetric distortions of neighboring TaO 6 octahedra break local inversion symmetry and induce dynamic polar nanoclusters within an otherwise nonpolar matrix. This configuration enables strong tunability while maintaining low dielectric permittivity and minimal loss across the broadband spectrum. The x = 0.08 composition shows optimal performance and enables agile frequency tuning in prototype antenna systems under applied electric fields or thermal stimulus. These findings establish interlayer microstrain engineering as a paradigm for designing high-performance, lead-free tunable microwave dielectrics for adaptive communication technologies.

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Publication Details

Journal
Science Advances
Published
2026-08-26
DOI
https://doi.org/10.1126/sciadv.aeg3509
Primary Topic
Ferroelectric and Piezoelectric Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Emergent polar order from interlayer microstrain in layered perovskites

Theo Saunders, Hangfeng Zhang, Orestis Christogeorgos, Haixue Yan et al.
Science Advances
Ferroelectric and Piezoelectric Materials
article

Emergent polar order from interlayer microstrain in layered perovskites

Theo Saunders, Hangfeng Zhang, Orestis Christogeorgos, Haixue Yan, Yang Hao
article en

Abstract

Ferroelectric materials with switchable polarization and nonlinear dielectric responses are promising candidates for reconfigurable communication systems. However, their practical use is limited by an inherent trade-off: large dielectric tunability is usually accompanied by high dielectric permittivity and increased loss. Layered perovskite oxides such as Sr 2 Ta 2 O 7 exhibit intrinsically low dielectric permittivity and low loss, but their centrosymmetric structure limits tunability. Here, we introduce subtle interlayer microstrain in (Ca x Sr 1- x ) 2 Ta 2 O 7 via site-selective Ca substitution. The resulting microstrain gradients and asymmetric distortions of neighboring TaO 6 octahedra break local inversion symmetry and induce dynamic polar nanoclusters within an otherwise nonpolar matrix. This configuration enables strong tunability while maintaining low dielectric permittivity and minimal loss across the broadband spectrum. The x = 0.08 composition shows optimal performance and enables agile frequency tuning in prototype antenna systems under applied electric fields or thermal stimulus. These findings establish interlayer microstrain engineering as a paradigm for designing high-performance, lead-free tunable microwave dielectrics for adaptive communication technologies.

Science AdvancesVol. 12(35)
Queen Mary University of London (GB)
Institution of Engineering and Technology, Engineering and Physical Sciences Research Council
Industry, innovation and infrastructure
Openalex Percentile: Top 23%
Ferroelectric and Piezoelectric Materials
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