Julius de Rojas
Tailoring magnon modes by extending square, kagome, and trigonal spin ice lattices vertically via interlayer coupling of trilayer nanomagnets.
de Rojas, Julius; Atkinson, Del; Adeyeye, Adekunle Olusola
Authors
Professor Del Atkinson del.atkinson@durham.ac.uk
Professor
Professor Adekunle Adeyeye adekunle.o.adeyeye@durham.ac.uk
Head of College
Abstract
In this work high-frequency magnetization dynamics and statics of artificial spin-ice lattices with different geometric nanostructure array configurations are studied where the individual nanostructures are composed of ferromagnetic/non-magnetic/ferromagnetic trilayers with different non-magnetic thicknesses. These thickness variations enable additional control over the magnetic interactions within the spin-ice lattice that directly impacts the resulting magnetization dynamics and the associated magnonic modes. Specifically the geometric arrangements studied are square, kagome and trigonal spin ice configurations, where the individual lithographically patterned nanomagnets are trilayers, made up of two magnetic layers of $\text{Ni}_{81}\text{Fe}_{19}$ of 30 nm and 70 nm thickness respectively, separated by a non-magnetic copper layer of either 2 nm or 40 nm. We show that coupling via the magnetostatic interactions between the ferromagnetic layers of the nanomagnets within square, kagome and trigonal spin-ice lattices offers fine-control over magnetization states and magnetic resonant modes. In particular, the kagome and trigonal lattices allow tuning of an additional mode and the spacing between multiple resonance modes, increasing functionality beyond square lattices. These results demonstrate the ability to move beyond quasi-2D single magnetic layer nanomagnetics via control of the vertical interlayer interactions in spin ice arrays. This additional control enables multi-mode magnonic programmability of the resonance spectra, which has potential for magnetic metamaterials for microwave or information processing applications. [Abstract copyright: Creative Commons Attribution license.]
Citation
de Rojas, J., Atkinson, D., & Adeyeye, A. O. (2024). Tailoring magnon modes by extending square, kagome, and trigonal spin ice lattices vertically via interlayer coupling of trilayer nanomagnets. Journal of Physics: Condensed Matter, 36(41), Article 415805. https://doi.org/10.1088/1361-648X/ad5d3f
Journal Article Type | Article |
---|---|
Acceptance Date | Jun 28, 2024 |
Online Publication Date | Jul 18, 2024 |
Publication Date | Oct 16, 2024 |
Deposit Date | Jul 25, 2024 |
Publicly Available Date | Jul 25, 2024 |
Journal | Journal of Physics: Condensed Matter |
Print ISSN | 0953-8984 |
Electronic ISSN | 1361-648X |
Publisher | IOP Publishing |
Peer Reviewed | Peer Reviewed |
Volume | 36 |
Issue | 41 |
Article Number | 415805 |
DOI | https://doi.org/10.1088/1361-648X/ad5d3f |
Keywords | Artificial Spin Ice, Mangetic Nanostructures, Microwave Devices, Mangetization Dynamics, Nanomagnets, Magnonics, Metamaterials |
Public URL | https://durham-repository.worktribe.com/output/2602984 |
Files
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Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/
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