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Electrostatically Driven Polarization Flop and Strain‐Induced Curvature in Free‐Standing Ferroelectric Superlattices

Authors :
Yaqi Li
Edoardo Zatterin
Michele Conroy
Anastasiia Pylypets
Fedir Borodavka
Alexander Björling
Dirk J. Groenendijk
Edouard Lesne
Adam J. Clancy
Marios Hadjimichael
Demie Kepaptsoglou
Quentin M. Ramasse
Andrea D. Caviglia
Jiri Hlinka
Ursel Bangert
Steven J. Leake
Pavlo Zubko
Source :
Advanced materials (2022) P. 2106826, Advanced Materials, 34(15)
Publication Year :
2022
Publisher :
Wiley, 2022.

Abstract

The combination of strain and electrostatic engineering in epitaxial heterostructures of ferroelectric oxides offers many possibilities for inducing new phases, complex polar topologies, and enhanced electrical properties. However, the dominant effect of substrate clamping can also limit the electromechanical response and often leaves electrostatics to play a secondary role. Releasing the mechanical constraint imposed by the substrate can not only dramatically alter the balance between elastic and electrostatic forces, enabling them to compete on par with each other, but also activate new mechanical degrees of freedom, such as the macroscopic curvature of the heterostructure. In this work, an electrostatically driven transition from a predominantly out-of-plane polarized to an in-plane polarized state is observed when a PbTiO3 /SrTiO3 superlattice with a SrRuO3 bottom electrode is released from its substrate. In turn, this polarization rotation modifies the lattice parameter mismatch between the superlattice and the thin SrRuO3 layer, causing the heterostructure to curl up into microtubes. Through a combination of synchrotron-based scanning X-ray diffraction imaging, Raman scattering, piezoresponse force microscopy and scanning transmission electron microscopy, the crystalline structure and domain patterns of the curved superlattices are investigated, revealing a strong anisotropy in the domain structure and a complex mechanism for strain accommodation. This article is protected by copyright. All rights reserved.

Details

ISSN :
15214095 and 09359648
Volume :
34
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....bef7fc675562af45bf4a0e49e5434a79
Full Text :
https://doi.org/10.1002/adma.202106826