Transport of spin-anisotropy without spin currents
Michael Hell, Sourin Das, Maarten Rolf Wegewijs

TL;DR
This paper investigates the transport of spin-anisotropy, specifically spin-quadrupole moments, across ferromagnetic tunnel junctions, revealing a pure exchange quadrupole current that persists even when charge and spin currents vanish.
Contribution
It introduces the concept of spin-quadrupole current in spin transport, extending the real-time diagrammatic approach to calculate multi-particle spin observables in spin-valve systems.
Findings
A non-zero spin-quadrupole current can flow without charge or spin currents.
Spin-anisotropy transport is partly independent of spin polarization.
The developed method can be extended to higher order tunneling processes.
Abstract
We revisit the transport of spin-degrees of freedom across an electrically and thermally biased tunnel junction between two ferromagnets with non-collinear magnetizations. Besides the well-known charge and spin currents we show that a non-zero spin-quadrupole current flows between the ferromagnets. This tensor-valued current describes the non-equilibrium transport of spin-anisotropy relating to both local and non-local multi-particle spin correlations of the circuit. This quadratic spin-anisotropy, quantified in terms of the spin-quadrupole moment, is fundamentally a two-electron quantity. In spin-valves with an embedded quantum dot such currents have been shown to result in a quadrupole accumulation that affects the measurable quantum dot spin and charge dynamics. The spin-valve model studied here allows fundamental questions about spin-quadrupole storage and transport to be worked out…
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