Abstract
We develop a theory for spin transport and magnetization dynamics in a quantum dot spin valve, i.e., two magnetic reservoirs coupled to a quantum dot. Our theory is able to take into account effects of strong correlations. We demonstrate that, as a result of these strong correlations, the dot gate voltage enables control over the current-induced torques on the magnets and, in particular, enables voltage-controlled magnetic switching. The electrical resistance of the structure can be used to read out the magnetic state. Our model may be realized by a number of experimental systems, including magnetic scanning-tunneling microscope tips and artificial quantum dot systems.
Cite
CITATION STYLE
Gergs, N. M., Bender, S. A., Duine, R. A., & Schuricht, D. (2018). Spin Switching via Quantum Dot Spin Valves. Physical Review Letters, 120(1). https://doi.org/10.1103/PhysRevLett.120.017701
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