Exploring the Possibility of Thermally Assisted Creation and Annihilation of Anti‐Frenkel Defects in a Multiferroic Oxide for Tuning Interfacial Ferroelectricity

Author:

Yeo Youngki12,Kim Jihun12,Suh Jeonghun12,Jang Jinhyuk3,Kang Kyungrok1,Schoenherr Peggy4,Kim Kwang‐Tak56,Kim Yong‐Jin127,Kim Kee Hoon56,Ulrich Clemens8,Seidel Jan4,Choi Si‐Young3,Yang Chan‐Ho129ORCID

Affiliation:

1. Department of Physics Korea Advanced Institute of Science and Technology Daejeon 34141 Republic of Korea

2. Center for Lattice Defectronics Korea Advanced Institute of Science and Technology Daejeon 34141 Republic of Korea

3. Department of Materials Science and Engineering Pohang University of Science and Technology Pohang 37673 Republic of Korea

4. School of Materials Science and Engineering The University of New South Wales Sydney NSW 2052 Australia

5. Center for Novel States of Complex Materials Research Department of Physics and Astronomy Seoul National University Seoul 08826 Republic of Korea

6. Institute of Applied Physics Department of Physics and Astronomy Seoul National University Seoul 08826 Republic of Korea

7. Photovoltaics Research Department Korea Institute of Energy Research Daejeon 34129 Republic of Korea

8. School of Physics The University of New South Wales Sydney NSW 2052 Australia

9. Institute for the NanoCentury Korea Advanced Institute of Science and Technology Daejeon 34141 Republic of Korea

Abstract

AbstractLattice defects such as oxygen vacancies, interstitials, and their complexes are present in crystalline oxide materials. In particular, anti‐Frenkel defects, which refer to charge‐neutral anion vacancy‐interstitial pairs, are strongly coupled with ferroelectric and dielectric properties as electric dipoles. However, in order to observe their macroscopic manifestation, delicate defect controls are required to the extent that electronic and ionic charges are almost completely suppressed. Here, the thermal cycle dependence of dielectric and piezoelectric properties is scrutinized in the strain‐driven morphotropic phase boundaries of multiferroic La‐substituted BiFeO3 thin films. Electrochemical impedance spectroscopy provides the Warburg feature that is considered evidence of the ionic origin. The observations are discussed based on anti‐Frenkel defects that are created or annihilated reversibly by thermal cycles through high‐temperature structural phase transition temperature or magnetic Néel temperature. The defect dipoles are spontaneously aligned by the flexoelectric effect in the phase boundaries inducing a metastable interfacial ferroelectric phase. The findings offer useful insight into defect dipoles.

Funder

National Research Foundation

Samsung

Australian Research Council

Publisher

Wiley

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