Controlling the competition between optically induced ultrafast spin-flip scattering and spin transport in magnetic multilayers

The study of ultrafast dynamics in magnetic materials provides rich opportunities for greater fundamental understanding of correlated phenomena in solid-state matter, because many of the basic microscopic mechanisms involved are as-yet unclear and are still being uncovered. Recently, two different p...

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Veröffentlicht in:Physical review letters 2013-05, Vol.110 (19), p.197201-197201, Article 197201
Hauptverfasser: Turgut, Emrah, La-o-Vorakiat, Chan, Shaw, Justin M, Grychtol, Patrik, Nembach, Hans T, Rudolf, Dennis, Adam, Roman, Aeschlimann, Martin, Schneider, Claus M, Silva, Thomas J, Murnane, Margaret M, Kapteyn, Henry C, Mathias, Stefan
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Sprache:eng
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Zusammenfassung:The study of ultrafast dynamics in magnetic materials provides rich opportunities for greater fundamental understanding of correlated phenomena in solid-state matter, because many of the basic microscopic mechanisms involved are as-yet unclear and are still being uncovered. Recently, two different possible mechanisms have been proposed to explain ultrafast laser induced magnetization dynamics: spin currents and spin-flip scattering. In this work, we use multilayers of Fe and Ni with different metals and insulators as the spacer material to conclusively show that spin currents can have a significant contribution to optically induced magnetization dynamics, in addition to spin-flip scattering processes. Moreover, we can control the competition between these two processes, and in some cases completely suppress interlayer spin currents as a sample undergoes rapid demagnetization. Finally, by reversing the order of the Fe/Ni layers, we experimentally show that spin currents are directional in our samples, predominantly flowing from the top to the bottom layer.
ISSN:0031-9007
1079-7114
DOI:10.1103/physrevlett.110.197201