Issue 17, 2020

Tuning ferroelectricity and ferromagnetism in BiFeO3/BiMnO3 superlattices

Abstract

Multiferroic materials with multifunctional characteristics play a critical role in the field of microelectronics. In a perovskite oxide, ferroelectric polarization and ferromagnetism usually cannot coexist in a single-phase material at the same time. In this work, we design a superlattice structure composed of alternating BiFeO3 and BiMnO3 layers and illustrate how tuning the supercell size of epitaxial BiFeO3/BiMnO3 superlattices facilitates ferroelectric polarization while maintaining relatively strong ferromagnetism. A comprehensive investigation reveals that the enhanced ferroelectric polarization of BiMnO3 layers originates from the induction effect induced by a strong polarization field generated by the adjacent ferroelectric BiFeO3 layers. For the magnetic behavior, we consider the existence of interfacial antiferromagnetic superexchange interaction of Fe–O–Mn between BiFeO3 and BiMnO3 layers in our superlattices. This modulation effect of artificial superlattices provides a platform to accurately control the multiple order parameters in a multiferroic oxide system.

Graphical abstract: Tuning ferroelectricity and ferromagnetism in BiFeO3/BiMnO3 superlattices

Supplementary files

Article information

Article type
Paper
Submitted
13 Nov 2019
Accepted
02 Apr 2020
First published
02 Apr 2020

Nanoscale, 2020,12, 9810-9816

Tuning ferroelectricity and ferromagnetism in BiFeO3/BiMnO3 superlattices

C. Jin, W. Geng, L. Wang, W. Han, D. Zheng, S. Hu, M. Ye, Z. Xu, Y. Ji, J. Zhao, Z. Chen, G. Wang, Y. Tang, Y. Zhu, X. Ma and L. Chen, Nanoscale, 2020, 12, 9810 DOI: 10.1039/C9NR09670A

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