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Sub-nanosecond signal propagation in anisotropy-engineered nanomagnetic logic chains

Authors :
Gu, Z
Nowakowski, ME
Carlton, DB
Storz, R
Im, MY
Hong, J
Chao, W
Lambson, B
Bennett, P
Alam, MT
Marcus, MA
Doran, A
Young, A
Scholl, A
Fischer, P
Bokor, J
Source :
Gu, Z; Nowakowski, ME; Carlton, DB; Storz, R; Im, MY; Hong, J; et al.(2015). Sub-nanosecond signal propagation in anisotropy-engineered nanomagnetic logic chains. Nature Communications, 6. doi: 10.1038/ncomms7466. UC Berkeley: Retrieved from: http://www.escholarship.org/uc/item/0jf3r6b2
Publication Year :
2015
Publisher :
eScholarship, University of California, 2015.

Abstract

© 2015 Macmillan Publishers Limited. All rights reserved. Energy efficient nanomagnetic logic (NML) computing architectures propagate binary information by relying on dipolar field coupling to reorient closely spaced nanoscale magnets. Signal propagation in nanomagnet chains has been previously characterized by static magnetic imaging experiments; however, the mechanisms that determine the final state and their reproducibility over millions of cycles in high-speed operation have yet to be experimentally investigated. Here we present a study of NML operation in a high-speed regime. We perform direct imaging of digital signal propagation in permalloy nanomagnet chains with varying degrees of shape-engineered biaxial anisotropy using full-field magnetic X-ray transmission microscopy and time-resolved photoemission electron microscopy after applying nanosecond magnetic field pulses. An intrinsic switching time of 100ps per magnet is observed. These experiments, and accompanying macrospin and micromagnetic simulations, reveal the underlying physics of NML architectures repetitively operated on nanosecond timescales and identify relevant engineering parameters to optimize performance and reliability.

Details

Language :
English
Database :
OpenAIRE
Journal :
Gu, Z; Nowakowski, ME; Carlton, DB; Storz, R; Im, MY; Hong, J; et al.(2015). Sub-nanosecond signal propagation in anisotropy-engineered nanomagnetic logic chains. Nature Communications, 6. doi: 10.1038/ncomms7466. UC Berkeley: Retrieved from: http://www.escholarship.org/uc/item/0jf3r6b2
Accession number :
edsair.od.......325..9bf208b0eb944cfcef56621adfdd97bc
Full Text :
https://doi.org/10.1038/ncomms7466.