Enhanced Spin Conductance of a Thin-Film Insulating Antiferromagnet

Scott Bender, Hans Skarsvåg, Arne Brataas, Rembert A. Duine

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

We investigate spin transport by thermally excited spin waves in an antiferromagnetic insulator. Starting from a stochastic Landau-Lifshitz-Gilbert phenomenology, we obtain the out-of-equilibrium spin-wave properties. In linear response to spin biasing and a temperature gradient, we compute the spin transport through a normal metal$|$antiferromagnet$|$normal metal heterostructure. We show that the spin conductance diverges as one approaches the spin-flop transition; this enhancement of the conductance should be readily observable by sweeping the magnetic field across the spin-flop transition. The results from such experiments may, on the one hand, enhance our understanding of spin transport near a phase transition, and on the other be useful for applications that require a large degree of tunability of spin currents. In contrast, the spin Seebeck coefficient does not diverge at the spin-flop transition. Furthermore, the spin Seebeck coefficient is finite even at zero magnetic field, provided that the normal metal contacts break the symmetry between the antiferromagnetic sublattices.
Original languageEnglish
Article number056804
JournalPhysical Review Letters
Volume119
Issue number5
DOIs
Publication statusPublished - 4 Aug 2017

Keywords

  • Antiferromagnetism
  • Ballistic transport
  • Insulators
  • Metals
  • Spin current
  • Spin waves
  • Spintronics
  • Thermomagnetic effects
  • Surfaces
  • Thin films
  • Landau-Lifschitz-Gilbert equation
  • Stochastic analysis

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