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Transition Metal Synthetic Ferrimagnets: Tunable Media for All-Optical Switching Driven by Nanoscale Spin Current

Authors :
J. Scott
Alpha T. N'Diaye
William Hendren
Gerrit van der Laan
R. J. Hicken
Robert M. Bowman
Connor R. J. Sait
D. M. Burn
David G. Newman
Andreas Frisk
Maciej Dabrowski
Paul Steven Keatley
Colin M. Forbes
Thorsten Hesjedal
Source :
Da̧browski, M, Scott, J N, Hendren, W R, Forbes, C M, Frisk, A, Burn, D M, Newman, D G, Sait, C R J, Keatley, P S, N’Diaye, A T, Hesjedal, T, van der Laan, G, Bowman, R M & Hicken, R J 2021, ' Transition Metal Synthetic Ferrimagnets: Tunable Media for All-Optical Switching Driven by Nanoscale Spin Current ', Nano Letters . https://doi.org/10.1021/acs.nanolett.1c03081
Publication Year :
2021
Publisher :
American Chemical Society (ACS), 2021.

Abstract

All-optical switching of magnetization has great potential for use in future ultrafast and energy efficient nanoscale magnetic storage devices. So far, research has been almost exclusively focused on rare-earth based materials, which limits device tunability and scalability. Here, we show that a perpendicularly magnetized synthetic ferrimagnet composed of two distinct transition metal ferromagnetic layers, Ni3Pt and Co, can exhibit helicity independent magnetization switching. Switching occurs between two equivalent remanent states with antiparallel alignment of the Ni3Pt and Co magnetic moments and is observable over a broad temperature range. Time-resolved measurements indicate that the switching is driven by a spin-polarized current passing through the subnanometer Ir interlayer. The magnetic properties of this model system may be tuned continuously via subnanoscale changes in the constituent layer thicknesses as well as growth conditions, allowing the underlying mechanisms to be elucidated and paving the way to a new class of data storage devices.

Details

ISSN :
15306992 and 15306984
Volume :
21
Database :
OpenAIRE
Journal :
Nano Letters
Accession number :
edsair.doi.dedup.....74701b981547c515eae367f762a42064
Full Text :
https://doi.org/10.1021/acs.nanolett.1c03081