Size Driven Barrier To Chirality Reversal in Electric Control of Magnetic Vortices in Ferromagnetic Nanodiscs
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Date
2022
Authors
Okatan, Mahmut Barış
Journal Title
Journal ISSN
Volume Title
Publisher
Royal Society of Chemistry
Open Access Color
Green Open Access
Yes
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Publicly Funded
No
Abstract
New high density storage media and spintronic devices come about with a progressing demand for the miniaturization of ferromagnetic structures. Vortex ordering of magnetic dipoles in such structures has been repeatedly observed as a stable state, offering the possibility of chirality in these states as a means to store information at high density. Electric pulses and magnetoelectric coupling are attractive options to control the chirality of such states in a deterministic manner. Here, we demonstrate the chirality reversal of vortex states in ferromagnetic nanodiscs via pulsed electric fields using a micromagnetic approach and focus on the analysis of the energetics of the reversal process. A strong thickness dependence of the chirality reversal in the nanodiscs is found that emanates from the anisotropy of the demagnetizing fields. Our results indicate that chiral switching of the magnetic moments in thin discs can give rise to a transient vortex-antivortex lattice not observed in thicker discs. This difference in the chirality reversal mechanism emanates from profoundly different energy barriers to overcome in thin and thicker discs. We also report the polarity-chirality correlation of a vortex that appears to depend on the aspect ratio of the nanodiscs.
Description
WASA and IBM acknowledge the financial support by TUBITAK through project 117F042.
Keywords
Aspect ratio, Electric fields, Ferromagnetic materials, Chirality, 530
Fields of Science
02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences
Citation
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
1
Source
Nanoscale
Volume
15
Issue
2
Start Page
707
End Page
717
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Scopus : 2
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Mendeley Readers : 2
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2
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2
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413
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9
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