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Fast domain wall motion in the vicinity of the angular momentum compensation temperature of ferrimagnets.
Kim, Kab-Jin; Kim, Se Kwon; Hirata, Yuushou; Oh, Se-Hyeok; Tono, Takayuki; Kim, Duck-Ho; Okuno, Takaya; Ham, Woo Seung; Kim, Sanghoon; Go, Gyoungchoon; Tserkovnyak, Yaroslav; Tsukamoto, Arata; Moriyama, Takahiro; Lee, Kyung-Jin; Ono, Teruo.
Afiliación
  • Kim KJ; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Kim SK; Department of Physics, Korea Advanced Institute of Science and Technology, Daejeon 34141, Korea.
  • Hirata Y; Department of Physics and Astronomy, University of California, Los Angeles, California 90095, USA.
  • Oh SH; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Tono T; Department of Nano-Semiconductor and Engineering, Korea University, Seoul 02841, Korea.
  • Kim DH; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Okuno T; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Ham WS; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Kim S; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Go G; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Tserkovnyak Y; Department of Materials Science & Engineering, Korea University, Seoul 02841, South Korea.
  • Tsukamoto A; Department of Physics and Astronomy, University of California, Los Angeles, California 90095, USA.
  • Moriyama T; College of Science and Technology, Nihon University, Funabashi, Chiba 274-8501, Japan.
  • Lee KJ; Institute for Chemical Research, Kyoto University, Gokasho, Uji, Kyoto 611-0011, Japan.
  • Ono T; Department of Nano-Semiconductor and Engineering, Korea University, Seoul 02841, Korea.
Nat Mater ; 16(12): 1187-1192, 2017 12.
Article en En | MEDLINE | ID: mdl-28967917
ABSTRACT
Antiferromagnetic spintronics is an emerging research field which aims to utilize antiferromagnets as core elements in spintronic devices. A central motivation towards this direction is that antiferromagnetic spin dynamics is expected to be much faster than its ferromagnetic counterpart. Recent theories indeed predicted faster dynamics of antiferromagnetic domain walls (DWs) than ferromagnetic DWs. However, experimental investigations of antiferromagnetic spin dynamics have remained unexplored, mainly because of the magnetic field immunity of antiferromagnets. Here we show that fast field-driven antiferromagnetic spin dynamics is realized in ferrimagnets at the angular momentum compensation point TA. Using rare earth-3d-transition metal ferrimagnetic compounds where net magnetic moment is nonzero at TA, the field-driven DW mobility is remarkably enhanced up to 20 km s-1 T-1. The collective coordinate approach generalized for ferrimagnets and atomistic spin model simulations show that this remarkable enhancement is a consequence of antiferromagnetic spin dynamics at TA. Our finding allows us to investigate the physics of antiferromagnetic spin dynamics and highlights the importance of tuning of the angular momentum compensation point of ferrimagnets, which could be a key towards ferrimagnetic spintronics.

Texto completo: 1 Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Año: 2017 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Tipo de estudio: Prognostic_studies Idioma: En Año: 2017 Tipo del documento: Article