Wiedemann-Franz Law for Magnon Transport
arXiv:1507.03807 · doi:10.1103/PhysRevB.92.134425
Abstract
One of the main goals of spintronics is to improve transport of information carriers and to achieve new functionalities with ultra-low dissipation. A most promising strategy for this holy grail is to use pure magnon currents created and transported in insulating magnets, in the complete absence of any conducting metallic elements. Here we propose a realistic solution to this fundamental challenge by analyzing magnon and heat transport in insulating ferromagnetic junctions. We calculate all transport coefficients for magnon transport and establish Onsager relations between them. We theoretically discover that magnon transport in junctions has a universal behavior, i.e. is independent of material parameters, and establish a magnon analog of the celebrated Wiedemann-Franz law which governs charge transport at low temperatures. We calculate the Seebeck and Peltier coefficients which are crucial quantities for spin caloritronics and demonstrate that they assume universal values in the low temperature limit. Finally, we show that our predictions are within experimental reach with current device and measurement technologies.
10 pages, 3 figures, updated into published version from PRB
References in corpus (9)
- Spin Seebeck insulator
- Theory of magnon-driven spin Seebeck effect
- Microscopic approach to current-driven domain wall dynamics
- The 2014 Magnetism Roadmap
- Stability of Bose Einstein condensates of hot magnons in YIG
- AC magnetization transport and power absorption in non-itinerant spin chains
- Verification of the Thomson-Onsager reciprocity relation for spin caloritronics
- Magnon transport through microwave pumping
- Single-spin manipulation in a double quantum dot in the field of a micromagnet
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- Interaction-stabilized topological magnon insulator in ferromagnets
- Magnonic quantum Hall effect and Wiedemann-Franz law
- Chiral Magnonic Edge States in Ferromagnetic Skyrmion Crystals Controlled by Magnetic Fields
- Spin Currents and Magnon Dynamics in Insulating Magnets
- Green's function formalism for spin transport in metal-insulator-metal heterostructures
- Thermodynamic transport theory of spin waves in ferromagnetic insulators
- Experimental proof of the reciprocal relation between spin Peltier and spin Seebeck effects in a bulk YIG/Pt bilayer
- Laser control of magnonic topological phases in antiferromagnets
- Magnon quantum anomalies in Weyl ferromagnets
- Magnonic Noise and Wiedemann-Franz Law
- Bosonic superfluid transport in a quantum point contact
- Transport between metals and magnetic insulators
- Breaking down the magnonic Wiedemann-Franz law in the hydrodynamic regime
- Magnonic thermal transport using the quantum Boltzmann equation
- Intrinsic Magnon Nernst Effects in Pyrochlore Iridate Thin Films
- Magnonic Josephson junctions and synchronized precession
- Violation of the magnonic Wiedemann-Franz law in the strong nonlinear regime
- Asymmetric quantum shot noise in magnon transport
- Magnon drag induced by magnon-magnon interactions characteristic of noncollinear magnets
- Interband magnon drag in ferrimagnetic insulators
- Optomagnonic Josephson effect in antiferromagnets
- Universal -suppression of magnonic shot noise in diffusive insulating magnets
- Thermomagnetic Anomalies by Magnonic Criticality in Ultracold Atomic Transport
- Temperature dependence of the mean magnon collision time in a spin Seebeck device
- Thermomagnetic anomalies in quantum magnon transport caused by tunable junction geometries in cold atomic systems
- Spin and thermal current scaling at a -junction of XX spin chains
- Ferroelectricity in a magnon Bose-Einstein condensate: Nonreciprocal superfluidity, exceptional points, and Majorana bosons
- Direct and alternating magnon spin currents across a junction interface irradiated by linearly polarized laser
- Theory of drift-enabled control in nonlocal magnon transport
- Longitudinal magnon transport properties in the easy-axis XXZ Heisenberg ferromagnet on the face-centered cubic lattice