Skip to main content

Research Repository

Advanced Search

Manipulation of spin orientation via ferroelectric switching in Fe-doped Bi2 WO6 from first principles

Inzani, Katherine; Pokhrel, Nabaraj; Leclerc, Nima; Clemens, Zachary; Ramkumar, Sriram P.; Griffin, Sinéad M.; Nowadnick, Elizabeth A.

Authors

Nabaraj Pokhrel

Nima Leclerc

Zachary Clemens

Sriram P. Ramkumar

Sinéad M. Griffin

Elizabeth A. Nowadnick



Abstract

Atomic-scale control of spins by electric fields is highly desirable for future technological applications. Magnetically doped Aurivillius-phase oxides present one route to achieve this, with magnetic ions substituted into the ferroelectric structure at dilute concentrations, resulting in spin-charge coupling. However, there has been minimal exploration of the ferroelectric switching pathways in this materials class, limiting predictions of the influence of an electric field on magnetic spins in the structure. Here, we determine the ferroelectric switching pathways of the end member of the Aurivillius phase family, Bi2WO6, using a combination of group theoretic analysis and density functional theory calculations. We find that in the ground state P21ab phase, a two-step switching pathway via C2 and Cm intermediate phases provides the lowest energy barrier. Considering iron substitutions on the W site in Bi2WO6, we determine the spin easy axis. By tracking the change in spin directionality during ferroelectric switching, we find that a 90∘ switch in the polarization direction leads to a 112° reorientation of the spin easy axis. The low-symmetry crystal-field environment of Bi2WO6 and magnetoelastic coupling on the magnetic dopant provide a route to spin control via an applied electric field.

Citation

Inzani, K., Pokhrel, N., Leclerc, N., Clemens, Z., Ramkumar, S. P., Griffin, S. M., & Nowadnick, E. A. (2022). Manipulation of spin orientation via ferroelectric switching in Fe-doped Bi2 WO6 from first principles. Physical Review B, 105(5), https://doi.org/10.1103/physrevb.105.054434

Journal Article Type Article
Acceptance Date Feb 9, 2022
Online Publication Date Feb 28, 2022
Publication Date Feb 28, 2022
Deposit Date Mar 19, 2025
Journal Physical Review B
Print ISSN 2469-9950
Electronic ISSN 2469-9969
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 105
Issue 5
DOI https://doi.org/10.1103/physrevb.105.054434
Public URL https://nottingham-repository.worktribe.com/output/46736132
Publisher URL https://journals.aps.org/prb/abstract/10.1103/PhysRevB.105.054434