PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
January 22, 2026Applied Physics Letters2 citations

Giant high-temperature electrostrain in BiFeO3-BaTiO3 ceramics via SrZrO3-induced morphotropic phase boundary and defect-mediated domain engineering

View Full Paper
SKSikandar KhanMHMuhammad HabibMAMuhammad Aamir

Key Points

  • Investigate the impact of SrZrO3 on the electrostrain and electrical properties of BiFeO3-BaTiO3 ceramics.
  • Engineering the BF40BT-xSZ compositional system to form a morphotropic phase boundary.
  • Assessing relaxor characteristics and leakage current suppression.
  • Measuring remnant polarization and unipolar strain at various temperatures.
  • Analyzing the effects of defect-mediated domain engineering on strain response.
  • Leakage currents decreased from 3.8 × 10−7 to 5.9 × 10−8 A/cm².
  • Achieved a high remnant polarization of 34.18 μC/cm².
  • Substantial unipolar strain increased to 0.85% at 120 °C.
  • Enhanced mobility of domain walls and polar nanoregions contributed to improved strain response.

Abstract

The 0.60BiFeO3−0.40BaTiO3-SrZrO3 (BF40BT-xSZ) compositional system is engineered to establish a morphotropic phase boundary (MPB) between coexisting tetragonal and pseudocubic phases (T+PC). Our results demonstrate that progressive incorporation of SZ not only enhances relaxor characteristics but also significantly suppresses leakage currents (from 3.8 × 10−7 to 5.9 × 10−8 A/cm2). Further studies reveal that the improved insulation originates from the inhibition of Fe3+→Fe2+ reduction, thereby reducing oxygen vacancy (VO··) concentrations and optimizing ferroelectric domain dynamics. Consequently, a high remnant polarization (Pm) of 34.18 μC/cm2 and a substantial unipolar strain (SmaxUni) of 0.302% at room temperature are achieved, with SmaxUni further escalating to a record-breaking 0.85% at 120 °C. This exceptional high-temperature performance is ascribed to the unpinning and mobility enhancement of domain walls and the coexistence of nanodomains and polar nanoregions, which facilitate spontaneous polarization rotation and collectively enhance strain response. These findings establish the BF40BT-xSZ system as a compelling candidate for high-temperature piezoelectric actuators.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Khan et al. (2026) studied this question.

synapsesocial.com/papers/6971bd90642b1836717e23a3https://doi.org/10.1063/5.0308134
Ask AI
Helpful
Bookmark
Share
View Full Paper