Asymmetry of the Ferroelectric Phase Transition in BaTiO <sub>3</sub>

A Asaf Hershkovitz (Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel) E Elangovan Hemaprabha (Department of Metallurgical and Materials Engineering Indian Institute of Technology (IIT) Madras Chennai Tamil Nadu 600 036 India) R Rajesh Mandal (Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel) P Pravin Kavle (Department of Materials Science and Engineering University of California Berkeley CA 94720 USA) J Jamil Tanus (Technion Israel Institute of Technology Solid State Institute, Technion City Haifa 3200003 Israel) M Maya Barzilay (Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel) C Ching‐Che Lin (Department of Materials Science and NanoEnginereing Rice University Houston Texas USA) D David Spirito (Department of Materials Science and Engineering Wolfson Building for Mechanical Engineering Tel Aviv University Tel Aviv 6997801 Israel) S Semen Gorfman B Bo Wang I Ignacio J. Villar‐García (CELLS‐ALBA Synchrotron Radiation Facility Cerdanyola del Valles 08290 Barcelona Spain) N Neus Domingo L Long‐Qing Chen (Department of Materials Science and Engineering Pennsylvania State University University Park Pennsylvania USA) L Lane W. Martin (Rice Advanced Materials Institute) Y Yachin Ivry

Abstract

Abstract Symmetry changes during phase transformations fundamentally determine the behavior of thermodynamic systems, governing phenomena as diverse as water evaporation, fermion condensation, and epidemic spreading. Phase transitions are conventionally divided into two classes, and this classification is typically assumed to remain invariant upon reversing the transition. Here, an asymmetric phase transformation is uncovered in the ferroelectric–paraelectric transition of single‐crystal BaTiO 3 , a model system for first‐order transitions. Under slow temperature variation (≤0.1 °C min −1) , thermodynamic, dielectric, and domain‐structure measurements reveal that the ferroelectric‐to‐paraelectric transition exhibits latent heat, phase coexistence, and a discontinuous order parameter, while these signatures are absent upon cooling. Complementary phase‐field simulations demonstrate similar behavior, attributing it to distinct elastic strain energy accumulation and release during heating and cooling. These findings reveal a first‐order character upon heating but a second‐order‐like behavior upon cooling, challenging the conventional paradigm of symmetric phase‐transition classification and suggesting new possibilities for ferroelectric‐based energy storage.

Article Details

Volume / Issue Vol. 38, Issue 25
Published May 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

A

Asaf Hershkovitz

Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel

E

Elangovan Hemaprabha

Department of Metallurgical and Materials Engineering Indian Institute of Technology (IIT) Madras Chennai Tamil Nadu 600 036 India

R

Rajesh Mandal

Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel

P

Pravin Kavle

Department of Materials Science and Engineering University of California Berkeley CA 94720 USA

J

Jamil Tanus

Technion Israel Institute of Technology Solid State Institute, Technion City Haifa 3200003 Israel

M

Maya Barzilay

Technion Israel Institute of Technology Faculty of Materials Science and Engineering Technion City Haifa 3200003 Israel

C

Ching‐Che Lin

Department of Materials Science and NanoEnginereing Rice University Houston Texas USA

D

David Spirito

Department of Materials Science and Engineering Wolfson Building for Mechanical Engineering Tel Aviv University Tel Aviv 6997801 Israel

S

Semen Gorfman

B

Bo Wang

I

Ignacio J. Villar‐García

CELLS‐ALBA Synchrotron Radiation Facility Cerdanyola del Valles 08290 Barcelona Spain

N

Neus Domingo

L

Long‐Qing Chen

Department of Materials Science and Engineering Pennsylvania State University University Park Pennsylvania USA

L

Lane W. Martin

Rice Advanced Materials Institute

Y

Yachin Ivry