A 2D ferroelectric vortex pattern in twisted BaTiO3 freestanding layers

Sánchez-Santolino, G. and Rouco, V. and Puebla, S. and Aramberri, H. and Zamora, V. and Cabero, M. and Cuellar, F. A. and Munuera, C. and Mompean, F. and Garcia-Hernandez, M. and Castellanos-Gomez, A. and Íñiguez, J. and Leon, C. and Santamaria, J. (2024) A 2D ferroelectric vortex pattern in twisted BaTiO3 freestanding layers. Nature, 626 (7999). pp. 529-534. ISSN 0028-0836

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Abstract

The wealth of complex polar topologiesrecently found in nanoscale ferroelectrics results from a delicate balance between the intrinsic tendency of the materials to develop a homogeneous polarization and the electric and mechanical boundary conditions imposed on them. Ferroelectric–dielectric interfaces are model systems in which polarization curling originates from open circuit-like electric boundary conditions, to avoid the build-up of polarization charges through the formation of flux-closure domains that evolve into vortex-like structures at the nanoscale level. Although ferroelectricity is known to couple strongly with strain (both homogeneous and inhomogeneous), the effect of mechanical constraints on thin-film nanoscale ferroelectrics has been comparatively less explored because of the relative paucity of strain patterns that can be implemented experimentally. Here we show that the stacking of freestanding ferroelectric perovskite layers with controlled twist angles provides an opportunity to tailor these topological nanostructures in a way determined by the lateral strain modulation associated with the twisting. Furthermore, we find that a peculiar pattern of polarization vortices and antivortices emerges from the flexoelectric coupling of polarization to strain gradients. This finding provides opportunities to create two-dimensional high-density vortex crystals that would enable us to explore previously unknown physical effects and functionalities.

Item Type: Article
Subjects: Open Article Repository > Multidisciplinary
Depositing User: Unnamed user with email support@openarticledepository.com
Date Deposited: 21 Feb 2024 07:01
Last Modified: 21 Feb 2024 07:01
URI: http://journal.251news.co.in/id/eprint/1991

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