Decoherence of transported spin in multichannel spin-orbit coupled spintronic devices: Scattering approach to spin density matrix from the ballistic to the localized regime
Branislav K. Nikolic, Satofumi Souma

TL;DR
This paper develops a formalism to analyze how spin coherence degrades during transport in spintronic devices due to spin-orbit interactions and scattering, providing insights into controlling spin decoherence in realistic systems.
Contribution
It introduces a spin density matrix formalism based on the Landauer transmission matrix to describe spin decoherence in multichannel spin-orbit coupled devices.
Findings
Spin states evolve from pure to mixed during transport.
Boundary scattering and impurities reduce spin coherence.
Entanglement with multiple channels explains decoherence mechanisms.
Abstract
By viewing current in the detecting lead of a spintronic device as being an ensemble of flowing spins corresponding to a mixed quantum state, where each spin itself is generally described by an improper mixture generated during the transport where it couples to other degrees of freedom due to spin-orbit (SO) interactions or inhomogeneous magnetic fields, we introduce the spin density operator associated with such current expressed in terms of the spin-resolved Landauer transmission matrix of the device. This formalism, which provides complete description of coupled spin-charge quantum transport in open finite-size systems attached to external probes, is employed to understand how initially injected pure spin states, comprising fully spin-polarized current, evolve into the mixed ones corresponding to partially polarized current. We analyze particular routes that diminish spin coherence…
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