Rashba interferometers: Spin-dependent single and two-electron interference
U. Zuelicke, A.I. Signal (Massey University)

TL;DR
This paper theoretically investigates spin-dependent quantum interference in a Rashba spin-orbit coupled Mach-Zehnder interferometer, revealing effects useful for spintronic devices and entanglement generation through tunable spin precession.
Contribution
It introduces a theoretical analysis of spin-dependent interference and entanglement in a Rashba interferometer, proposing new mechanisms for spintronic applications.
Findings
Spin-dependent transport effects enable spintronic device concepts.
Analytical expressions for two-electron scattering matrices are derived.
Entanglement can be generated and controlled via electric fields.
Abstract
Quantum transport in semiconductor nanostructures can be described theoretically in terms of the propagation and scattering of electron probability waves. Within this approach, elements of a phase-coherent electric circuit play a role similar to quantum-optical devices that can be characterised by scattering matrices. Electronic analogues of well-know optical interferometers have been fabricated and used to study special features of charge carriers in solids. We present results from our theoretical investigation into the interplay between spin precession and quantum interference in an electronic Mach-Zehnder interferometer with spin-orbit coupling of the Rashba type. Intriguing spin-dependent transport effects occur, which can be the basis for novel spintronic devices such as a magnet-less spin-controlled field-effect transistor and a variety of single-qubit gates. Their functionality…
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