Voltage-based magnetization switching and reading in magnetoelectric spin-orbit nanodevices
Abstract
As CMOS technologies face challenges in dimensional and voltage scaling, the demand for novel logic devices has never been greater, with spin-based devices offering scaling potential, at the cost of significantly high switching energies. Alternatively, magnetoelectric materials are predicted to enable low-power magnetization control, a solution with limited device-level results. Here, we demonstrate voltage-based magnetization switching and reading in nanodevices at room temperature, enabled by exchange coupling between multiferroic BiFeO and ferromagnetic CoFe, for writing, and spin-to-charge current conversion between CoFe and Pt, for reading. We show that upon the electrical switching of the BiFeO, the magnetization of the CoFe can be reversed, giving rise to different voltage outputs. Through additional microscopy techniques, magnetization reversal is linked with the polarization state and antiferromagnetic cycloid propagation direction in the BiFeO. This study constitutes the building block for magnetoelectric spin-orbit logic, opening a new avenue for low-power beyond-CMOS technologies.
Cite
@article{arxiv.2302.12162,
title = {Voltage-based magnetization switching and reading in magnetoelectric spin-orbit nanodevices},
author = {Diogo C. Vaz and Chia-Ching Lin and John J. Plombon and Won Young Choi and Inge Groen and Isabel C. Arango and Andrey Chuvilin and Luis E. Hueso and Dmitri E. Nikonov and Hai Li and Punyashloka Debashis and Scott B. Clendenning and Tanay A. Gosavi and Yen-Lin Huang and Bhagwati Prasad and Ramamoorthy Ramesh and Aymeric Vecchiola and Manuel Bibes and Karim Bouzehouane and Stephane Fusil and Vincent Garcia and Ian A. Young and Fèlix Casanova},
journal= {arXiv preprint arXiv:2302.12162},
year = {2024}
}
Comments
16 pages, 5 figures and Supplementary Information