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  5. Realization of ground state in artificial kagome spin ice via topological defect-driven magnetic writing
 
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Realization of ground state in artificial kagome spin ice via topological defect-driven magnetic writing
File(s)
TMW-Main-Manuscript-Nat-Nano-FINAL.pdf (2.75 MB)
Accepted version
OA Location
http://rdcu.be/yXpY
Author(s)
Gartside, JC
Arroo, DM
Burn, DM
Bemmer, VL
Moskalenko, A
more
Type
Journal Article
Abstract
Arrays of non-interacting nanomagnets are widespread in data storage and processing. As current technologies approach fundamental limits on size and thermal stability, enhancing functionality through embracing the strong interactions present at high array densities becomes attractive. In this respect, artificial spin ices are geometrically frustrated magnetic metamaterials that offer vast untapped potential due to their unique microstate landscapes, with intriguing prospects in applications from reconfigurable logic to magnonic devices or hardware neural networks. However, progress in such systems is impeded by the inability to access more than a fraction of the total microstate space. Here, we demonstrate that topological defect-driven magnetic writing-a scanning probe technique-provides access to all of the possible microstates in artificial spin ices and related arrays of nanomagnets. We create previously elusive configurations such as the spin-crystal ground state of artificial kagome dipolar spin ices and high-energy, low-entropy 'monopole-chain' states that exhibit negative effective temperatures.
Date Issued
2018-01-01
Date Acceptance
2017-09-14
Citation
Nature Nanotechnology, 2018, 13 (1), pp.53-58
URI
http://hdl.handle.net/10044/1/54156
DOI
https://www.dx.doi.org/10.1038/s41565-017-0002-1
ISSN
1748-3387
Publisher
Nature Publishing Group
Start Page
53
End Page
58
Journal / Book Title
Nature Nanotechnology
Volume
13
Issue
1
Copyright Statement
Copyright © 2017, Rights Managed by Nature Publishing Group
Sponsor
The Leverhulme Trust
Engineering & Physical Science Research Council (EPSRC)
Identifier
PII: 10.1038/s41565-017-0002-1
Grant Number
RPG_2012-692
EP/G004765/1
Subjects
Science & Technology
Technology
Nanoscience & Nanotechnology
Materials Science, Multidisciplinary
Science & Technology - Other Topics
Materials Science
SCANNING TUNNELING MICROSCOPE
FORCE MICROSCOPY
CHARGE
ENTROPY
SYSTEMS
DIPOLE
POINT
TIPS
cond-mat.mes-hall
cond-mat.mes-hall
Nanoscience & Nanotechnology
Publication Status
Published
Date Publish Online
2017-11-20
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