Trembling motion of electrons driven by Larmor spin precession

Fuente: arXiv
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Main Authors: Stepanov, I., Ersfeld, M., Poshakinskiy, A. V., Lepsa, M., Ivchenko, E. L., Tarasenko, S. A., Beschoten, B.
Format: Preprint
Published: 2025
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author Stepanov, I.
Ersfeld, M.
Poshakinskiy, A. V.
Lepsa, M.
Ivchenko, E. L.
Tarasenko, S. A.
Beschoten, B.
author_facet Stepanov, I.
Ersfeld, M.
Poshakinskiy, A. V.
Lepsa, M.
Ivchenko, E. L.
Tarasenko, S. A.
Beschoten, B.
contents We show that the initialization of an ensemble of electrons in the same spin state in strained n-InGaAs subject to a perpendicular magnetic field triggers an AC electric current at GHz frequencies. The AC current emerges in the absence of any driving force and survives until the coherent precession of the electron spins is lost. The current amplitude increases linearly with both the spin-orbit coupling strength and the external magnetic field. The generation mechanism of the observed oscillatory charge motion can be fruitfully described in terms of the periodic trembling motion of spin-polarized electrons, which is a solid-state analog to the Zitterbewegung of free Dirac electrons. Our results demonstrate that the hidden consequence of relativistic quantum mechanics is realized and can be studied in a rather simple solid-state system at moderate temperatures. Furthermore, the large amplitude of the AC current at high magnetic fields enables ultra-fast spin sensitive electric read-out in solids.
format Preprint
id arxiv_https___arxiv_org_abs_2510_12187
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Trembling motion of electrons driven by Larmor spin precession
Stepanov, I.
Ersfeld, M.
Poshakinskiy, A. V.
Lepsa, M.
Ivchenko, E. L.
Tarasenko, S. A.
Beschoten, B.
Mesoscale and Nanoscale Physics
Materials Science
We show that the initialization of an ensemble of electrons in the same spin state in strained n-InGaAs subject to a perpendicular magnetic field triggers an AC electric current at GHz frequencies. The AC current emerges in the absence of any driving force and survives until the coherent precession of the electron spins is lost. The current amplitude increases linearly with both the spin-orbit coupling strength and the external magnetic field. The generation mechanism of the observed oscillatory charge motion can be fruitfully described in terms of the periodic trembling motion of spin-polarized electrons, which is a solid-state analog to the Zitterbewegung of free Dirac electrons. Our results demonstrate that the hidden consequence of relativistic quantum mechanics is realized and can be studied in a rather simple solid-state system at moderate temperatures. Furthermore, the large amplitude of the AC current at high magnetic fields enables ultra-fast spin sensitive electric read-out in solids.
title Trembling motion of electrons driven by Larmor spin precession
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2510.12187