The Effect of Chemical Environment and Temperature on the Domain Structure of Free‐Standing BaTiO3 via In Situ STEM

Author:

O'Reilly Tamsin12ORCID,Holsgrove Kristina M.1ORCID,Zhang Xinqiao3,Scott John J. R.1ORCID,Gaponenko Iaro4ORCID,Kumar Praveen15ORCID,Agar Joshua3ORCID,Paruch Patrycja4ORCID,Arredondo Miryam1ORCID

Affiliation:

1. School of Mathematics and Physics Queen's University Belfast Belfast BT7 1NN UK

2. University of Glasgow Glasgow G12 8QQ UK

3. Department of Mechanical Engineering and Mechanics Drexel University Philadelphia PA 19104 USA

4. DQMP University of Geneva Geneva 1211 Switzerland

5. Shared Instrumentation Facility Colorado School of Mines Golden CO 80401 USA

Abstract

AbstractFerroelectrics, due to their polar nature and reversible switching, can be used to dynamically control surface chemistry for catalysis, chemical switching, and other applications such as water splitting. However, this is a complex phenomenon where ferroelectric domain orientation and switching are intimately linked to surface charges. In this work, the temperature‐induced domain behavior of ferroelectric‐ferroelastic domains in free‐standing BaTiO3 films under different gas environments, including vacuum and oxygen‐rich, is studied by in situ scanning transmission electron microscopy (STEM). An automated pathway to statistically disentangle and detect domain structure transformations using deep autoencoders, providing a pathway towards real‐time analysis is also established. These results show a clear difference in the temperature at which phase transition occurs and the domain behavior between various environments, with a peculiar domain reconfiguration at low temperatures, from a‐c to a‐a at ≈60 °C. The vacuum environment exhibits a rich domain structure, while under the oxidizing environment, the domain structure is largely suppressed. The direct visualization provided by in situ gas and heating STEM allows to investigate the influence of external variables such as gas, pressure, and temperature, on oxide surfaces in a dynamic manner, providing invaluable insights into the intricate surface‐screening mechanisms in ferroelectrics.

Funder

Engineering and Physical Sciences Research Council

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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