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Grain orientation dependent superelasticity in ferroelectrics for enhanced electromechanical properties

  • Xuhui Lou
  • , Boyu Zuo
  • , Xu Hou
  • , Xu Sheng Yang
  • , Wentao Jiang
  • , Qingyuan Wang
  • , Haidong Fan
  • , Jie Wang
  • , Ying Liang (Corresponding Author)
  • , Xiaobao Tian (Corresponding Author)

Research output: Journal article publicationJournal articleAcademic researchpeer-review

Abstract

The practical application of ferroelectric ceramics is limited by their inherent electromechanical property constraints. Superelasticity, characterized by considerable recoverable strain and piezoelectric coefficient in ferroelectrics, offers a promising solution for advanced actuators and sensors. However, the complex electromechanical coupling effects caused by different oriented grains pose challenges for implementing superelasticity in ferroelectric ceramics. This paper elucidates that superelasticity is prominently exhibited within small orientation regimes but becomes suppressed as the orientation increases. Grain orientation affects electromechanical properties: Young's modulus abruptly drops from 91 to 3 GPa near the superelastic transition at the orientation angle of 0 ° , while it stabilizes around the intrinsic modulus at 45 ° . The peak piezoelectric coefficient reaches 5000 pC / N near the transition at 0 ° , exceeding the previously reported values by an order of magnitude. The proposed grain orientation-centered mechanism of superelasticity offers valuable theoretical support for designing ferroelectric devices with grain distributions, particularly in textured ceramics.

Original languageEnglish
Article number022901
Number of pages7
JournalApplied Physics Letters
Volume127
Issue number2
DOIs
Publication statusPublished - 14 Jul 2025

ASJC Scopus subject areas

  • Physics and Astronomy (miscellaneous)

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