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Gürsoy, F. Nur ; Reck, Phillipp ; Gorini, Cosimo ; Richter, Klaus ; Adagideli, İnanç

Dynamical Spin-Orbit-Based Spin Transistor

Gürsoy, F. Nur, Reck, Phillipp , Gorini, Cosimo , Richter, Klaus und Adagideli, İnanç (2021) Dynamical Spin-Orbit-Based Spin Transistor. arXiv. (Eingereicht)

Veröffentlichungsdatum dieses Volltextes: 16 Mai 2022 06:48
Artikel
DOI zum Zitieren dieses Dokuments: 10.5283/epub.49334

WarnungEs ist eine neuere Version dieses Eintrags verfügbar.

Zusammenfassung

Spin-orbit interaction (SOI) has been a key tool to steer and manipulate spin-dependent transport properties in two-dimensional electron gases. Here we demonstrate how spin currents can be created and efficiently read out in nano- or mesoscale conductors with time-dependent and spatially inhomogenous Rashba SOI. Invoking an underlying non-Abelian SU(2) gauge structure we show how time-periodic ...

Spin-orbit interaction (SOI) has been a key tool to steer and manipulate spin-dependent transport properties in two-dimensional electron gases. Here we demonstrate how spin currents can be created and efficiently read out in nano- or mesoscale conductors with time-dependent and spatially inhomogenous Rashba SOI. Invoking an underlying non-Abelian SU(2) gauge structure we show how time-periodic spin-orbit fields give rise to spin-motive forces and enable the generation of pure spin currents of the order of several hundred nano-Amperes. In a complementary way, by combining gauge transformations with "hidden" Onsager relations, we exploit spatially inhomogenous Rashba SOI to convert spin currents (back) into charge currents. In combining both concepts, we devise a spin transistor that integrates efficient spin current generation, by employing dynamical SOI, with its experimentally feasible detection via conversion into charge signals. We derive general expressions for the respective spin- and charge conductances, covering large parameter regimes of SOI strength and driving frequencies, far beyond usual adiabatic approaches such as the frozen scattering matrix approximation. We check our analytical expressions and approximations with full numerical spin-dependent transport simulations and demonstrate that the predictions hold true in a wide range from low to high driving frequencies.



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Details

DokumentenartArtikel
Titel eines Journals oder einer ZeitschriftarXiv
Verlag:arXiv.org
Datum22 September 2021
InstitutionenPhysik > Institut für Theoretische Physik > Lehrstuhl Professor Richter > Arbeitsgruppe Klaus Richter
Identifikationsnummer
WertTyp
arXiv:2109.10991arXiv-ID
Stichwörter / KeywordsMesoscale and Nanoscale Physics
Dewey-Dezimal-Klassifikation500 Naturwissenschaften und Mathematik > 530 Physik
StatusEingereicht
BegutachtetNein, diese Version wurde noch nicht begutachtet (bei preprints)
An der Universität Regensburg entstandenZum Teil
URN der UB Regensburgurn:nbn:de:bvb:355-epub-493348
Dokumenten-ID49334

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