Local nature of impurity induced spin-orbit torques
POSTER
Abstract
Spin-orbit torques are of a great interest due to their potential applications for spin electronics. Generally, it originates from strong spin orbit coupling of heavy 4d/5d elements and its mechanism is usually attributed either to the Spin Hall effect or Rashba spin-orbit coupling. We have developed a quantum-mechanical approach based on the non-equilibrium Green's function formalism and tight binding Hamiltonian model to study spin-orbit torques and extended our theory for the case of extrinsic spin-orbit coupling induced by impurities. For the sake of simplicity, we consider a magnetic material on a two dimensional lattice with a single non-magnetic impurity. However, our model can be easily extended for three dimensional layered heterostructures. Based on our calculations, we present the detailed analysis of the origin of local spin-orbit torques and persistent charge currents around the impurity, that give rise to spin-orbit torques even in equilibrium and explain the existence of anisotropy.
Authors
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Sergey Nikolaev
SPINTEC, Grenoble, France
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Alan Kalitsov
Department of Physics, University of Puerto Rico, San Juan, PR 00931-3344, USA, MINT Center, University of Alabama, AL, USA
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Mairbec Chshiev
SPINTEC, Grenoble, France
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Oleg Mryasov
MINT Center, University of Alabama, AL, USA