Shot noise and spin-orbit coherent control of entangled and spin polarized electrons
J. Carlos Egues, Guido Burkard, D. Saraga, John Schliemann, and Daniel, Loss

TL;DR
This paper develops a comprehensive theoretical framework for analyzing shot noise in entangled and spin-polarized electrons in a beam-splitter with spin-orbit interaction, enabling coherent control and detection of quantum states.
Contribution
It introduces general formulas for shot noise with spin-orbit effects, including channel anticrossings and multiple orbital channels, advancing understanding of electron entanglement detection.
Findings
Distinct shot noise signatures for singlet and triplet states near anticrossings.
Spin-orbit interactions enable independent coherent control of electron states.
Backscattering reduces noise oscillation visibility, affecting entanglement detection.
Abstract
We extend our previous work on shot noise for entangled and spin polarized electrons in a beam-splitter geometry with spin-orbit (\textit{s-o}) interaction in one of the incoming leads (lead 1). Besides accounting for both the Dresselhaus and the Rashba spin-orbit terms, we present general formulas for the shot noise of singlet and triplets states derived within the scattering approach. We determine the full scattering matrix of the system for the case of leads with \textit{two} orbital channels coupled via weak \textit{s-o} interactions inducing channel anticrossings. We show that this interband coupling coherently transfers electrons between the channels and gives rise to an additional modulation angle -- dependent on both the Rashba and Dresselhaus interaction strengths -- which allows for further independent coherent control of the electrons traversing the incoming leads. We derive…
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