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Multiferroic BaCoF4 in thin film form: ferroelectricity, magnetic ordering, and strain

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posted on 2017-03-30, 08:32 authored by Pavel BorisovPavel Borisov, Trent A. Johnson, Andres C. Garcia-Castro, Amit KC, Dustin Schrecongost, Cheng Cen, Aldo H. Romero, David Lederman
Multiferroic materials have simultaneous magnetic and ferroelectric long-range orders and can be potentially useful for a wide range of applications. Conventional ferroelectricity in oxide perovskites favors nonmagnetic electronic configurations of transition metal ions, thus limiting the number of intrinsic multiferroic materials. On the other hand, this is not necessarily true for multiferroic fluorides. Using molecular beam epitaxy, we demonstrate for the first time that the multiferroic orthorhombic fluoride BaCoF4 can be synthesized in thin film form. Ferroelectric hysteresis measurements and piezoresponse force microscopy show that the films are indeed ferroelectric. From structural information, magnetic measurements, and first-principles calculations, a modified magnetic ground state is identified which can be represented as a combination of bulk collinear antiferromagnetism with two additional canted spin orders oriented along orthogonal axes of the BaCoF4 unit cell. The calculations indicate that an anisotropic epitaxial strain is responsible for this unusual magnetic ground state.

Funding

This work was supported by the DMREF program of the US National Science Foundation (grant# DMR-1434897) and the WVU Shared Research Facilities.

History

School

  • Science

Department

  • Physics

Published in

ACS Applied Materials and Interfaces

Volume

8

Issue

4

Pages

2694 - 2703

Citation

BORISOV, P. ... et al., 2016. Multiferroic BaCoF4 in thin film form: ferroelectricity, magnetic ordering, and strain. ACS Applied Materials and Interfaces, 8 (4), pp. 2694 - 2703.

Publisher

© American Chemical Society

Version

  • AM (Accepted Manuscript)

Publisher statement

This work is made available according to the conditions of the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0) licence. Full details of this licence are available at: https://creativecommons.org/licenses/by-nc-nd/4.0/

Acceptance date

2016-01-08

Publication date

2016-01-08

Copyright date

2016

Notes

This article was published in ACS Applied Materials and Interfaces [© American Chemical Society] and the definitive version is available at: http://dx.doi.org/10.1021/acsami.5b10814

ISSN

1944-8244

eISSN

1944-8252

Language

  • en

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