Tunable and Persistent Macroscopic Polarization in Nominally Centrosymmetric Defective Oxides

D Dae‐Sung Park (Department of Energy Conversion and Storage Technical University of Denmark Fysikvej Kongens Lyngby 2800 Denmark) N Nini Pryds N Nicolas Gauquelin M Mahmoud Hadad (Group for Electroceramic Thin Films Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland) D Dmitry Chezganov (Electron Microscopy for Materials Science (EMAT) University of Antwerp Antwerpen B‐2020 Belgium) A Alessandro Palliotto (Department of Energy Conversion and Storage, Technical University of Denmark , Fysikvej 310, DK-2800 Kgs. Lyngby,) D Daen Jannis (Electron Microscopy for Materials Science (EMAT) University of Antwerp Antwerpen B‐2020 Belgium) J Jorge Íñiguez‐González (Smart Materials Unit Luxembourg Institute of Science and Technology (LIST) Esch/Alzette Luxembourg) J Johan Verbeeck P Paul Muralt (Group for Electroceramic Thin Films Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland) D Dragan Damjanovic (Group for Ferroelectrics and Functional Oxides Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland)

Abstract

Abstract Introducing symmetry breaking in materials enables the emergence of functionalities. This can be microscopically and macroscopically driven by applying external stimuli such as mechanical stress, electric field, temperature, and chemical modification. For instance, non‐zero net dipole moments are formed in a material with the presence of local charged defects or their clusters, which can alter the crystal structure, charge states, and electrostatic potential across the material. Here, a conceptual approach is demonstrated to defects‐mediated symmetry breaking that allows for built‐in polarization in a nominally centrosymmetric defective oxide, Gd x Ce 1‐ x O 2‐ δ (CGO) films by creating a macroscopic charge asymmetry. These results show that switchable and enduring polarization in CGO films is governed by the electric field‐driven redistribution of oxygen vacancies with a critical field strength of ≈0.5 MV cm −1 at room temperature. This leads to notable and persistent pyroelectric effect with a coefficient of ≈180 µC m −2  K −1 . These findings highlight the potential to develop high‐performance, sustainable, environmentally friendly polar film materials by manipulating ionic defects from their centrosymmetric ground states. This approach provides new opportunities to expand the range of polar materials in current and future energy and electronic applications.

Article Details

Volume / Issue Vol. 38, Issue 3
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

D

Dae‐Sung Park

Department of Energy Conversion and Storage Technical University of Denmark Fysikvej Kongens Lyngby 2800 Denmark

N

Nini Pryds

N

Nicolas Gauquelin

M

Mahmoud Hadad

Group for Electroceramic Thin Films Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland

D

Dmitry Chezganov

Electron Microscopy for Materials Science (EMAT) University of Antwerp Antwerpen B‐2020 Belgium

A

Alessandro Palliotto

Department of Energy Conversion and Storage, Technical University of Denmark , Fysikvej 310, DK-2800 Kgs. Lyngby,

D

Daen Jannis

Electron Microscopy for Materials Science (EMAT) University of Antwerp Antwerpen B‐2020 Belgium

J

Jorge Íñiguez‐González

Smart Materials Unit Luxembourg Institute of Science and Technology (LIST) Esch/Alzette Luxembourg

J

Johan Verbeeck

P

Paul Muralt

Group for Electroceramic Thin Films Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland

D

Dragan Damjanovic

Group for Ferroelectrics and Functional Oxides Swiss Federal Institute of Technology–EPFL Lausanne 1015 Switzerland