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Programmability of Co-antidot lattices of optimized geometry

Programmability of stable magnetization configurations in a magnetic device is a highly desirable feature for a variety of applications, such as in magneto-transport and spin-wave logic. Periodic systems such as antidot lattices may exhibit programmability; however, to achieve multiple stable magnet...

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Autores principales: Schneider, Tobias, Langer, Manuel, Alekhina, Julia, Kowalska, Ewa, Oelschlägel, Antje, Semisalova, Anna, Neudert, Andreas, Lenz, Kilian, Potzger, Kay, Kostylev, Mikhail P., Fassbender, Jürgen, Adeyeye, Adekunle O., Lindner, Jürgen, Bali, Rantej
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5286523/
https://www.ncbi.nlm.nih.gov/pubmed/28145463
http://dx.doi.org/10.1038/srep41157
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author Schneider, Tobias
Langer, Manuel
Alekhina, Julia
Kowalska, Ewa
Oelschlägel, Antje
Semisalova, Anna
Neudert, Andreas
Lenz, Kilian
Potzger, Kay
Kostylev, Mikhail P.
Fassbender, Jürgen
Adeyeye, Adekunle O.
Lindner, Jürgen
Bali, Rantej
author_facet Schneider, Tobias
Langer, Manuel
Alekhina, Julia
Kowalska, Ewa
Oelschlägel, Antje
Semisalova, Anna
Neudert, Andreas
Lenz, Kilian
Potzger, Kay
Kostylev, Mikhail P.
Fassbender, Jürgen
Adeyeye, Adekunle O.
Lindner, Jürgen
Bali, Rantej
author_sort Schneider, Tobias
collection PubMed
description Programmability of stable magnetization configurations in a magnetic device is a highly desirable feature for a variety of applications, such as in magneto-transport and spin-wave logic. Periodic systems such as antidot lattices may exhibit programmability; however, to achieve multiple stable magnetization configurations the lattice geometry must be optimized. We consider the magnetization states in Co-antidot lattices of ≈50 nm thickness and ≈150 nm inter-antidot distance. Micromagnetic simulations were applied to investigate the magnetization states around individual antidots during the reversal process. The reversal processes predicted by micromagnetics were confirmed by experimental observations. Magnetization reversal in these antidots occurs via field driven transition between 3 elementary magnetization states – termed G, C and Q. These magnetization states can be described by vectors, and the reversal process proceeds via step-wise linear operations on these vector states. Rules governing the co-existence of the three magnetization states were empirically observed. It is shown that in an n × n antidot lattice, a variety of field switchable combinations of G, C and Q can occur, indicating programmability of the antidot lattices.
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spelling pubmed-52865232017-02-06 Programmability of Co-antidot lattices of optimized geometry Schneider, Tobias Langer, Manuel Alekhina, Julia Kowalska, Ewa Oelschlägel, Antje Semisalova, Anna Neudert, Andreas Lenz, Kilian Potzger, Kay Kostylev, Mikhail P. Fassbender, Jürgen Adeyeye, Adekunle O. Lindner, Jürgen Bali, Rantej Sci Rep Article Programmability of stable magnetization configurations in a magnetic device is a highly desirable feature for a variety of applications, such as in magneto-transport and spin-wave logic. Periodic systems such as antidot lattices may exhibit programmability; however, to achieve multiple stable magnetization configurations the lattice geometry must be optimized. We consider the magnetization states in Co-antidot lattices of ≈50 nm thickness and ≈150 nm inter-antidot distance. Micromagnetic simulations were applied to investigate the magnetization states around individual antidots during the reversal process. The reversal processes predicted by micromagnetics were confirmed by experimental observations. Magnetization reversal in these antidots occurs via field driven transition between 3 elementary magnetization states – termed G, C and Q. These magnetization states can be described by vectors, and the reversal process proceeds via step-wise linear operations on these vector states. Rules governing the co-existence of the three magnetization states were empirically observed. It is shown that in an n × n antidot lattice, a variety of field switchable combinations of G, C and Q can occur, indicating programmability of the antidot lattices. Nature Publishing Group 2017-02-01 /pmc/articles/PMC5286523/ /pubmed/28145463 http://dx.doi.org/10.1038/srep41157 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Schneider, Tobias
Langer, Manuel
Alekhina, Julia
Kowalska, Ewa
Oelschlägel, Antje
Semisalova, Anna
Neudert, Andreas
Lenz, Kilian
Potzger, Kay
Kostylev, Mikhail P.
Fassbender, Jürgen
Adeyeye, Adekunle O.
Lindner, Jürgen
Bali, Rantej
Programmability of Co-antidot lattices of optimized geometry
title Programmability of Co-antidot lattices of optimized geometry
title_full Programmability of Co-antidot lattices of optimized geometry
title_fullStr Programmability of Co-antidot lattices of optimized geometry
title_full_unstemmed Programmability of Co-antidot lattices of optimized geometry
title_short Programmability of Co-antidot lattices of optimized geometry
title_sort programmability of co-antidot lattices of optimized geometry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5286523/
https://www.ncbi.nlm.nih.gov/pubmed/28145463
http://dx.doi.org/10.1038/srep41157
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