4.8 Article

Anisotropic long-range spin transport in canted antiferromagnetic orthoferrite YFeO3

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-33520-5

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资金

  1. Max Planck Graduate Center
  2. Johannes Gutenberg-Universitat Mainz (MPGC)
  3. DFG [423441604]
  4. Horizon 2020 Framework Programme of the European Commission under FET-Open [964931]
  5. MaHoJeRo (DAAD Spintronics network) [57334897, 57524834, DFG SFB TRR 173, 268565370]
  6. KAUST [OSR-2019-CRG8-4048.2]
  7. Research Council of Norway through its Centers of Excellence funding scheme [262633]
  8. Horizon Europe Framework Programme of the European Commission [1010702P7]
  9. ERC Synergy Grant SC2 [610115]
  10. EU FET Open RIA [766566]
  11. Deutsche Forschungsgemeinschaft (DFG) [TRR 288 - 422213477]
  12. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [358671374]
  13. Science and Technology Commission of Shanghai Municipality [21JC1402600]
  14. National Natural Science Foundation of China [12074242]

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The research shows that there is a mechanism for long-distance spin transport in the antiferromagnetic orthoferrite YFeO3, with a magnon decay length exceeding hundreds of nanometers and low magnetic damping. The strong anisotropy in magnon decay lengths is attributed to the role of magnon group velocity in the transport of spin-waves.
In antiferromagnets, the efficient transport of spin-waves has until now only been observed in the insulating antiferromagnet hematite, where circularly (or a superposition of pairs of linearly) polarized spin-waves diffuse over long distances. Here, we report long-distance spin-transport in the antiferromagnetic orthoferrite YFeO3, where a different transport mechanism is enabled by the combined presence of the Dzyaloshinskii-Moriya interaction and externally applied fields. The magnon decay length is shown to exceed hundreds of nanometers, in line with resonance measurements that highlight the low magnetic damping. We observe a strong anisotropy in the magnon decay lengths that we can attribute to the role of the magnon group velocity in the transport of spin-waves in antiferromagnets. This unique mode of transport identified in YFeO3 opens up the possibility of a large and technologically relevant class of materials, i.e., canted antiferromagnets, for long-distance spin transport.

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