Issue 8, 2023

Switching magnetic strip orientation using electric fields

Abstract

In spintronics, ordered magnetic domains are important for magnetic microdevices and controlling the orientation of ordered magnetic domains is important for applications such as domain wall resistance and spin wave propagation. Although a magnetic field or a current can reorient ordered magnetic domains, an energy-efficient electric-field-driven rotation of the ordered magnetic domains remains elusive. Here, using a nanotrenched polymeric layer, we obtain ordered magnetic strip domains in Ni films on a ferroelectric substrate. By applying electric fields to the ferroelectric substrate, we demonstrate that the ordered magnetic strip domains in Ni films are switched between the y- and x-axes driven by electric-fields. This switching of magnetic strip orientation is attributed to the electric-field-modulated in-plane magnetic anisotropies along the x- and y-axes of the Ni films, which are caused by the anisotropic biaxial strain of the ferroelectric substrate via strain-mediated magnetoelectric coupling. These results provide an energy-efficient approach for manipulating the ordered magnetic domains using electric fields.

Graphical abstract: Switching magnetic strip orientation using electric fields

Supplementary files

Article information

Article type
Communication
Submitted
14 Mar 2023
Accepted
09 May 2023
First published
10 May 2023
This article is Open Access
Creative Commons BY-NC license

Mater. Horiz., 2023,10, 3034-3043

Switching magnetic strip orientation using electric fields

A. Chen, H. Piao, C. Zhang, X. Ma, H. Algaidi, Y. Ma, Y. Li, D. Zheng, Z. Qiu and X. Zhang, Mater. Horiz., 2023, 10, 3034 DOI: 10.1039/D3MH00378G

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