Magnetic coupling in trilayer films of FeNi/Cu/FeCo deposited on Si/SiO2 substrates have been studied. While the thicknesses of the FeNi and FeCo layers were kept constant at 100 Å, the thickness of the Cu spacer was varied from 5 to 50 Å. Both hysteresis loop and ferromagnetic resonance results indicate that all films are ferromagnetically coupled. Micromagnetic simulations well reproduce the ferromagnetic resonance mode positions measured by experiments, enabling the extraction of the coupling constants. Films with a thin Cu spacer are found to be strongly coupled, with an effective coupling constant of 3 erg/cm2 for the sample with a 5 Å Cu spacer. The strong coupling strength is qualitatively understood within the framework of a combined effect of Ruderman-Kittel-Kasuya-Yosida and pinhole coupling, which is evidenced by transmission electron microscopy analysis. The magnetic coupling constant surprisingly decreases exponentially with increasing Cu spacer thickness, without showing an oscillatory thickness dependence. This is partially connected to the substantial interfacial roughness that washes away the oscillation. The results have implications on the design of multilayers for spintronic applications.
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26 January 2015
Research Article|
January 29 2015
Exponentially decaying magnetic coupling in sputtered thin film FeNi/Cu/FeCo trilayers
Yajun Wei;
Yajun Wei
a)
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Serkan Akansel;
Serkan Akansel
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Thomas Thersleff;
Thomas Thersleff
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Ian Harward;
Ian Harward
2Department of Physics,
University of Colorado
, Colorado Springs, Colorado 80918, USA
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Rimantas Brucas
;
Rimantas Brucas
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Mojtaba Ranjbar;
Mojtaba Ranjbar
3Department of Physics,
University of Gothenburg
, 41296 Gothenburg, Sweden
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Somnath Jana;
Somnath Jana
4Department of Physics and Astronomy,
Uppsala University
, 75120 Uppsala, Sweden
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Pia Lansaker;
Pia Lansaker
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Yevgen Pogoryelov
;
Yevgen Pogoryelov
4Department of Physics and Astronomy,
Uppsala University
, 75120 Uppsala, Sweden
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Randy K. Dumas;
Randy K. Dumas
3Department of Physics,
University of Gothenburg
, 41296 Gothenburg, Sweden
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Klaus Leifer;
Klaus Leifer
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Olof Karis;
Olof Karis
4Department of Physics and Astronomy,
Uppsala University
, 75120 Uppsala, Sweden
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Johan Åkerman;
Johan Åkerman
3Department of Physics,
University of Gothenburg
, 41296 Gothenburg, Sweden
5Department of Applied Physics and Microelectronics,
Royal Institute of Technology
, 10044 Kista, Sweden
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Zbigniew Celinski;
Zbigniew Celinski
2Department of Physics,
University of Colorado
, Colorado Springs, Colorado 80918, USA
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Peter Svedlindh
Peter Svedlindh
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
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Yajun Wei
1,a)
Serkan Akansel
1
Thomas Thersleff
1
Ian Harward
2
Rimantas Brucas
1
Mojtaba Ranjbar
3
Somnath Jana
4
Pia Lansaker
1
Yevgen Pogoryelov
4
Randy K. Dumas
3
Klaus Leifer
1
Olof Karis
4
Johan Åkerman
3,5
Zbigniew Celinski
2
Peter Svedlindh
1
1Department of Engineering Sciences,
Uppsala University
, 75121 Uppsala, Sweden
2Department of Physics,
University of Colorado
, Colorado Springs, Colorado 80918, USA
3Department of Physics,
University of Gothenburg
, 41296 Gothenburg, Sweden
4Department of Physics and Astronomy,
Uppsala University
, 75120 Uppsala, Sweden
5Department of Applied Physics and Microelectronics,
Royal Institute of Technology
, 10044 Kista, Sweden
Appl. Phys. Lett. 106, 042405 (2015)
Article history
Received:
November 27 2014
Accepted:
January 13 2015
Citation
Yajun Wei, Serkan Akansel, Thomas Thersleff, Ian Harward, Rimantas Brucas, Mojtaba Ranjbar, Somnath Jana, Pia Lansaker, Yevgen Pogoryelov, Randy K. Dumas, Klaus Leifer, Olof Karis, Johan Åkerman, Zbigniew Celinski, Peter Svedlindh; Exponentially decaying magnetic coupling in sputtered thin film FeNi/Cu/FeCo trilayers. Appl. Phys. Lett. 26 January 2015; 106 (4): 042405. https://doi.org/10.1063/1.4906591
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