Quantum-kinetic theory of spin-transfer torque and magnon-assisted transport in nanoscale magnetic junctions

Publication date

2019-01-29

Authors

Bender, Scott A.ISNI 0000000505957351
Duine, R. A.ISNI 0000000387951716
Tserkovnyak, Yaroslav

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Document Type

Article
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Abstract

We theoretically investigate the role of spin fluctuations in charge transport through a magnetic junction. Motivated by recent experiments that measure a nonlinear dependence of the current on electrical bias, we develop a systematic understanding of the interplay of charge and spin dynamics in nanoscale magnetic junctions. Our model captures two distinct features arising from these fluctuations: magnon-assisted transport and the effect of spin-transfer torque on the magnetoconductance. The latter stems from magnetic misalignment in the junction induced by spin-current fluctuations. As the temperature is lowered, inelastic quantum scattering takes over thermal fluctuations, exhibiting signatures that make it readily distinguishable from magnon-assisted transport.

Keywords

Electronic, Optical and Magnetic Materials, Condensed Matter Physics

Citation

Bender, S A, Duine, R A & Tserkovnyak, Y 2019, 'Quantum-kinetic theory of spin-transfer torque and magnon-assisted transport in nanoscale magnetic junctions', Physical Review B, vol. 99, no. 2, 024434. https://doi.org/10.1103/PhysRevB.99.024434