Nonlocal Spin Transport as a Probe of Viscous Magnon Fluids
Publication date
2019-09-13
Authors
Ulloa, Camilo
Tomadin, A.
Shan, J.
Polini, M.
Van Wees, B. J.
Duine, R. A.
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Article
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Abstract
Magnons in ferromagnets behave as a viscous fluid over a length scale, the momentum-relaxation length, below which momentum-conserving scattering processes dominate. We show theoretically that in this hydrodynamic regime viscous effects lead to a sign change in the magnon chemical potential, which can be detected as a sign change in the nonlocal resistance measured in spin transport experiments. This sign change is observable when the injector-detector distance becomes comparable to the momentum-relaxation length. Taking into account momentum- A nd spin-relaxation processes, we consider the quasiconservation laws for momentum and spin in a magnon fluid. The resulting equations are solved for nonlocal spin transport devices in which spin is injected and detected via metallic leads. Because of the finite viscosity we also find a backflow of magnons close to the injector lead. Our work shows that nonlocal magnon spin transport devices are an attractive platform to develop and study magnon-fluid dynamics.
Keywords
General Physics and Astronomy
Citation
Ulloa, C, Tomadin, A, Shan, J, Polini, M, Van Wees, B J & Duine, R A 2019, 'Nonlocal Spin Transport as a Probe of Viscous Magnon Fluids', Physical Review Letters, vol. 123, no. 11, 117203, pp. 1-5. https://doi.org/10.1103/PhysRevLett.123.117203