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Microscopic derivation of magnon spin current in a topological insulator/ferromagnet heterostructure

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arxiv 1610.03636 v3 pith:SMQ3OJDH submitted 2016-10-12 cond-mat.mes-hall cond-mat.mtrl-sci

Microscopic derivation of magnon spin current in a topological insulator/ferromagnet heterostructure

classification cond-mat.mes-hall cond-mat.mtrl-sci
keywords spincurrentferromagnettorqueheterostructuremagnonelectricinduced
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate a spin-electricity conversion effect in a topological insulator/ferromagnet heterostructure. In the spin-momentum-locked surface state, an electric current generates nonequilibrium spin accumulation, which causes a spin-orbit torque that acts on the ferromagnet. When spins in the ferromagnet are completely parallel to the accumulated spin, this spin-orbit torque is zero. In the presence of spin excitations, however, a coupling between magnons and electrons enables us to obtain a nonvanishing torque. In this paper, we consider a model of the heterostructure in which a three-dimensional magnon gas is coupled with a two-dimensional massless Dirac electron system at the interface. We calculate the torque induced by an electric field, which can be interpreted as a magnon spin current, up to the lowest order of the electron-magnon interaction. We derive the expressions for high and low temperatures and estimate the order of magnitude of the induced spin current for realistic materials at room temperature.

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