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Enhanced Gilbert damping in Re-doped FeCo films : Combined experimental and theoretical study

Akansel, Serkan (author)
Uppsala universitet,Fasta tillståndets fysik
Kumar, Ankit (author)
Uppsala universitet,Fasta tillståndets fysik
Venugopal, Vijayaharan A. (author)
Seagate Technol, Londonderry BT48 0BF, North Ireland
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Esteban-Puyuelo, Raquel (author)
Uppsala universitet,Materialteori
Banerjee, Rudra (author)
Uppsala universitet,Materialteori
Autieri, Carmine (author)
Uppsala universitet,Materialteori
Brucas, Rimantas (author)
Uppsala universitet,Fasta tillståndets fysik
Behera, Nilamani (author)
Uppsala universitet,Fasta tillståndets fysik
Sortica, Mauricio A. (author)
Uppsala universitet,Tillämpad kärnfysik
Primetzhofer, Daniel (author)
Uppsala universitet,Tillämpad kärnfysik
Basu, Swaraj (author)
Seagate Technol, Londonderry BT48 0BF, North Ireland
Gubbins, Mark A. (author)
Seagate Technol, Londonderry BT48 0BF, North Ireland
Sanyal, Biplab (author)
Uppsala universitet,Materialteori
Svedlindh, Peter (author)
Uppsala universitet,Fasta tillståndets fysik
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 (creator_code:org_t)
2019
2019
English.
In: Physical Review B. - 2469-9950 .- 2469-9969. ; 99:17
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The effects of rhenium doping in the range 0-10 at.% on the static and dynamic magnetic properties of Fe65Co35 thin films have been studied experimentally as well as with first-principles electronic structure calculations focusing on the change of the saturation magnetization (M-s) and the Gilbert damping parameter (alpha). Both experimental and theoretical results show that M-s decreases with increasing Re-doping level, while at the same time alpha increases. The experimental low temperature saturation magnetic induction exhibits a 29% decrease, from 2.31 to 1.64 T, in the investigated doping concentration range, which is more than predicted by the theoretical calculations. The room temperature value of the damping parameter obtained from ferromagnetic resonance measurements, correcting for extrinsic contributions to the damping, is for the undoped sample 2.1 x 10(-3), which is close to the theoretically calculated Gilbert damping parameter. With 10 at.% Re doping, the damping parameter increases to 7.8 x 10(-3), which is in good agreement with the theoretical value of 7.3 x 10(-3). The increase in damping parameter with Re doping is explained by the increase in the density of states at the Fermi level, mostly contributed by the spin-up channel of Re. Moreover, both experimental and theoretical values for the damping parameter weakly decrease with decreasing temperature.

Subject headings

NATURVETENSKAP  -- Fysik -- Den kondenserade materiens fysik (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Condensed Matter Physics (hsv//eng)

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