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Local lattice distortion drives enhanced piezoelectricity and thermal stability in 0.9Pb(Yb,Nb)O3–0.1Pb(Hf,Ti)O3 ceramics

  • Pengdou Yun
  • , Maolin Zhang
  • , Zhengqi Chen
  • , Dongyan Zhang
  • , Zhimin Li
  • , Li Jin
  • , Yangxi Yan
  • Xidian University

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

Reversible domain switching is a common method for enhancing piezoelectric response. However, low-energy-barrier domain switching simultaneously exacerbates temperature-sensitive phase transitions. This establishes an inverse correlation between "high piezoelectricity and low TC" in conventional systems. It is imperative to break the inherent compromise between piezoelectric response and thermal stability in lead-based ceramics. This study presents a breakthrough in addressing this longstanding issue via atomic-level lattice engineering in Pb(Yb,Nb)O3–Pb(Hf,Ti)O3 systems. A comprehensive investigation, combining advanced characterization techniques and density functional theory (DFT) calculations, elucidates the atomic-scale mechanisms underlying the performance enhancement. The co-doping strategy generates localized heterogeneous regions, primarily manifested distortions at oxygen octahedral sites, which effectively lower the crystal symmetry and facilitate enhanced polarization switching. Our approach achieved a piezoelectric coefficient reaching 592 pC/N in the ceramic, while maintaining excellent thermal characteristics (Curie temperature of 343.1 °C) and a dielectric loss (Tan δ) of 0.0121. Compared with the benchmark material (d₃₃ = 458 pC/N, Tc = 351.8 °C), PYN-PHT-0.8(Li++Mo6+) represents a 30 % enhancement in d₃₃ and only a 2.5 % decrease (8.7 °C shift) in Tc. Through precise control of local Landau potential energy landscapes at dopant sites, the material demonstrates exceptional thermal stability, maintaining a small fluctuation range (△d33 ∼ 4.7 %) across a broad temperature range (ambient temperature-300 °C). The findings provide critical insights into providing crucial guidance for designing advanced piezoelectric materials with comprehensive performance.

Original languageEnglish
Article number182455
JournalJournal of Alloys and Compounds
Volume1037
DOIs
StatePublished - 10 Aug 2025

Keywords

  • Domain structure
  • High piezoelectric coefficient
  • Local lattice distortion
  • PYN–PHT ceramics
  • Thermal stability

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