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High Piezoelectricity and Strong Field Endurance in Pb(Zr,Ti)O3-Rich Textured Ceramics

  • Xin Liu
  • , Mingyang Tang
  • , Yulong Zhang
  • , Jingheng Chai
  • , Ruoqi Jin
  • , Yike Wang
  • , Jing Feng Li
  • , Brahim Dkhil
  • , Zhuo Xu
  • , Liwei D. Geng
  • , Yongke Yan
  • Xi'an Jiaotong University
  • Sichuan University
  • Tsinghua University
  • Université Paris-Saclay

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

Simultaneously achieving ultrahigh piezoelectricity (including high piezoelectric constant d33 and strain) along with enhanced field endurance (characterized by high coercive field EC and Curie temperature Tc) is critical for high-drive electromechanical applications. However, this remains a major challenge, as high piezoelectricity typically arises from an easy polarization rotation enabled by low ferroelectric anisotropy, while strong thermal/stress/electric field endurance requires high anisotropy. Here, a multifaceted design strategy is proposed that combines structural distortions and crystallographic anisotropy. This approach is successfully demonstrated in Pb(Yb1/2Nb1/2)O3 (PYN) modified and [001] textured PbZr1-xTixO3 (PZT)-rich ceramics via a one-step templated grain growth method. As a specific representative, 0.5% Eu-doped 0.1PYN -0.9PZT textured ceramics, shows an outstanding d33 of 950 pC N−1 and d33* of 1927 pm V−1, an ultrahigh strain of 0.65%, a large EC of 10 kV cm−1, and a high TC of 360 °C. High-resolution electron microscopy and phase-field simulations confirm that these high performances originate from the synergistic design of a highly distorted matrix (via PYN incorporation), local structural heterogeneity induced by Eu-doping, and crystallographic anisotropy achieved through texturing. This study successfully offers a cost-effective new route for the design of ultrahigh piezoelectricity and enhanced field endurance piezoceramics.

Original languageEnglish
JournalAdvanced Functional Materials
DOIs
StateAccepted/In press - 2025

Keywords

  • phase-field simulations
  • piezoelectric properties
  • PZT
  • strain
  • textured ceramics

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