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research article

Magnetic thin-film insulator with ultra-low spin wave damping for coherent nanomagnonics

Yu, Haiming
•
Kelly, O. D'Allivy
•
Cros, V.
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2014
Scientific Reports

Wave control in the solid state has opened new avenues in modern information technology. Surface-acoustic-wave-based devices are found as mass market products in 100 millions of cellular phones. Spin waves (magnons) would offer a boost in today's data handling and security implementations, i. e., image processing and speech recognition. However, nanomagnonic devices realized so far suffer from the relatively short damping length in the metallic ferromagnets amounting to a few 10 micrometers typically. Here we demonstrate that nm-thick YIG films overcome the damping chasm. Using a conventional coplanar waveguide we excite a large series of short-wavelength spin waves (SWs). From the data we estimate a macroscopic of damping length of about 600 micrometers. The intrinsic damping parameter suggests even a record value about 1 mm allowing for magnonics-based nanotechnology with ultra-low damping. In addition, SWs at large wave vector are found to exhibit the non-reciprocal properties relevant for new concepts in nanoscale SW-based logics. We expect our results to provide the basis for coherent data processing with SWs at GHz rates and in large arrays of cellular magnetic arrays, thereby boosting the envisioned image processing and speech recognition.

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Type
research article
DOI
10.1038/srep06848
Web of Science ID

WOS:000343987400003

Author(s)
Yu, Haiming
Kelly, O. D'Allivy
Cros, V.
Bernard, R.
Bortolotti, P.
Anane, A.
Brandl, F.
Huber, R.
Stasinopoulos, I.
Grundler, D.
Date Issued

2014

Publisher

Nature Publishing Group

Published in
Scientific Reports
Volume

4

Article Number

6848

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMGN  
Available on Infoscience
December 30, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/109773
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