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Journal of Synthetic Crystals ›› 2026, Vol. 55 ›› Issue (9): 1448-1459.DOI: 10.16553/j.cnki.issn1000-985x.2026.0069

• Research Articles • Previous Articles     Next Articles

Strain Tuning of Domain Structure in BaTiO3 Polycrystalline Nanofilms

ZHANG Mingran1,2(), MA Rui1,2, ZHANG Yuanxiang1,2   

  1. 1.College of Mechanical Engineering,Quzhou University,Quzhou 324000,China
    2.Key Laboratory of Air-driven Equipment Technology of Zhejiang Province,Quzhou 324000,China
  • Received:2026-04-20 Online:2026-09-20 Published:2026-09-29

Abstract: BaTiO3 ferroelectric nanofilms demonstrate intricate domain structures and distinct nonlinear electromechanical behaviors as a result of the constraints imposed by diverse substrates. This work utilized a phase field model grounded in the framework of continuum thermodynamics to investigated the novel characteristics imparted to ferroelectric polycrystalline nanofilm systems by the rapid polarization reversal process under different tensile and compressive strain conditions. In contrast to existing studies focusing on single-crystal epitaxial films, this paper comprehensively examined factors including grain boundary effects and grain orientation. It further simulated the impact of in-plane strain on the microstructural domain structure and electromechanical characteristics of ferroelectric polycrystalline nanofilms, considering two distinct grain sizes, 60 and 10 nm. The results indicate that for a grain size of 60 nm, both the coercive field and remnant polarization decrease monotonically, suggesting that increased compressive strain effectively enhances the ferroelectric properties of the nanofilm. Conversely, at a grain size of 10 nm, excessive compressive strain results in a sudden reduction in both remnant polarization and coercive field. Furthermore, in contrast to single-crystal films, due to the existence of grain boundaries in polycrystalline films, the domain structures (90° domains, 180° domains and vortex domain structures) of the films under different tensile and compressive strains show diversity, even if the polycrystalline films produce a variety of complex electromechanical characteristics. This study explores the micro-mechanisms of ferroelectric materials by examining their internal microstructure, with the aim of facilitating the application and regulation of the macroscopic properties of ferroelectric nanofilms. The findings provide theoretical guidance for the design of high-performance ferroelectric nanofilms microelectronic devices.

Key words: BaTiO3; ferroelectric polycrystalline nanofilm; phase-field method; domain structure; strain tuning; in-plane strain; size effect

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