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

S Salman Ali Khan M Muhammad Habib M Muhammad Aamir T Tauseef Ahmed (Core Research Facilities (CRF), King Fahd University of Petroleum and Minerals 6 , Dhahran 31261,) K Khan Alam (Department of Physics/IRC for Sustainable Energy Systems, King Fahd University of Petroleum and Minerals 3 , Dhahran 31261,) A Attaur Rahman (Center for Advanced Ceramics, School of Materials Science and Engineering, Anhui Polytechnic University 7 , Wuhu 241000,) M Myong Ho Kim (School of Materials Science and Engineering/Department of Materials Convergence and System Engineering, Changwon National University 5 , Changwon, Gyeongnam 51140,) S Soonil Lee (School of Materials Science and Engineering/Department of Materials Convergence and System Engineering, Changwon National University 5 , Changwon, Gyeongnam 51140,) S Siya Huang (College of Chemistry and Chemical Engineering, and Key (Guangdong-Hong Kong Joint) Laboratory for Preparation and Application of Ordered Structural Materials of Guangdong Province, Shantou University 1 , Shantou 515063,)

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.

Article Details

Volume / Issue Vol. 128, Issue 3
Published January 19, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

S

Salman Ali Khan

M

Muhammad Habib

M

Muhammad Aamir

T

Tauseef Ahmed

Core Research Facilities (CRF), King Fahd University of Petroleum and Minerals 6 , Dhahran 31261,

K

Khan Alam

Department of Physics/IRC for Sustainable Energy Systems, King Fahd University of Petroleum and Minerals 3 , Dhahran 31261,

A

Attaur Rahman

Center for Advanced Ceramics, School of Materials Science and Engineering, Anhui Polytechnic University 7 , Wuhu 241000,

M

Myong Ho Kim

School of Materials Science and Engineering/Department of Materials Convergence and System Engineering, Changwon National University 5 , Changwon, Gyeongnam 51140,

S

Soonil Lee

School of Materials Science and Engineering/Department of Materials Convergence and System Engineering, Changwon National University 5 , Changwon, Gyeongnam 51140,

S

Siya Huang

College of Chemistry and Chemical Engineering, and Key (Guangdong-Hong Kong Joint) Laboratory for Preparation and Application of Ordered Structural Materials of Guangdong Province, Shantou University 1 , Shantou 515063,