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Microscopic theory of electrically induced spin torques in magnetic Weyl semimetals

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arxiv 1702.04918 v1 pith:2DCTJMCV submitted 2017-02-16 cond-mat.mes-hall

Microscopic theory of electrically induced spin torques in magnetic Weyl semimetals

classification cond-mat.mes-hall
keywords spintorquesemimetalsweylcharge-inducedelectricalmagnetizationaxial
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We theoretically study electrical responses of magnetization in Weyl semimetals. The Weyl semimetal is a new class of topological semimetals, possessing hedgehog type spin textures in momentum space. Because of this peculiar spin texture, an interplay of electron transport and spin dynamics might provide new method to electrical control of magnetization. In this paper, we consider the magnetically doped Weyl semimetals, and systematically study current- and charge-induced spin torque exerted on the local magnetization in three-dimensional Dirac-Weyl metals. We determine all current-induced spin torques including spin-orbit torque, spin-transfer torque, and the so-called $\beta$-term, up to first order with respect to spatial and temporal derivation and electrical currents. We find that spin-transfer torque and $\beta$-term are absent while spin-orbit torque is proportional to the axial current density. We also calculate the charge-induced spin torque microscopically. We find the charge-induced spin torque originates from the chiral anomaly due to the correspondence between spin operators and axial current operators in our model.

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