TY - JOUR
T1 - Spin absorption at ferromagnetic-metal/platinum-oxide interface
AU - Asami, Akio
AU - An, Hongyu
AU - Musha, Akira
AU - Kuroda, Makoto
AU - Ando, Kazuya
N1 - Publisher Copyright:
Copyright © 2018, The Authors. All rights reserved.
Copyright:
Copyright 2020 Elsevier B.V., All rights reserved.
PY - 2018/7/31
Y1 - 2018/7/31
N2 - We investigate the absorption of a spin current at a ferromagnetic-metal/Pt-oxide interface by measuring current-induced ferromagnetic resonance. The spin absorption was characterized by the magnetic damping of the heterostructure. We show that the magnetic damping of a Ni81Fe19film is clearly enhanced by attaching Pt-oxide on the Ni81Fe19film. The damping enhancement is disappeared by inserting an ultrathin Cu layer between the Ni81Fe19and Pt-oxide layers. These results demonstrate an essential role of the direct contact between the Ni81Fe19and Pt-oxide to induce sizable interface spin-orbit coupling. Furthermore, the spin-absorption parameter of the Ni81Fe19/Pt-oxide interface is comparable to that of intensively studied heterostructures with strong spin-orbit coupling, such as an oxide interface, topological insulators, metallic junctions with Rashba spin-orbit coupling. This result illustrates strong spin-orbit coupling at the ferromagnetic-metal/Pt-oxide interface, providing an important piece of information for quantitative understanding the spin absorption and spin-charge conversion at the ferromagnetic-metal/metallic-oxide interface.
AB - We investigate the absorption of a spin current at a ferromagnetic-metal/Pt-oxide interface by measuring current-induced ferromagnetic resonance. The spin absorption was characterized by the magnetic damping of the heterostructure. We show that the magnetic damping of a Ni81Fe19film is clearly enhanced by attaching Pt-oxide on the Ni81Fe19film. The damping enhancement is disappeared by inserting an ultrathin Cu layer between the Ni81Fe19and Pt-oxide layers. These results demonstrate an essential role of the direct contact between the Ni81Fe19and Pt-oxide to induce sizable interface spin-orbit coupling. Furthermore, the spin-absorption parameter of the Ni81Fe19/Pt-oxide interface is comparable to that of intensively studied heterostructures with strong spin-orbit coupling, such as an oxide interface, topological insulators, metallic junctions with Rashba spin-orbit coupling. This result illustrates strong spin-orbit coupling at the ferromagnetic-metal/Pt-oxide interface, providing an important piece of information for quantitative understanding the spin absorption and spin-charge conversion at the ferromagnetic-metal/metallic-oxide interface.
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M3 - Article
AN - SCOPUS:85093232182
JO - Mathematical Social Sciences
JF - Mathematical Social Sciences
SN - 0165-4896
ER -