Spin-orbit coupling in digital alloyed InGaAs quantum wells

Fuente: arXiv
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Hauptverfasser: Dong, Jason T., Gul, Yilmaz, Rodriguez, Irene Villar, Engel, Aaron N., Dempsey, Connor P., Holmes, Stuart N., Pepper, Michael, Palmstrøm, Christopher J.
Format: Preprint
Veröffentlicht: 2025
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author Dong, Jason T.
Gul, Yilmaz
Rodriguez, Irene Villar
Engel, Aaron N.
Dempsey, Connor P.
Holmes, Stuart N.
Pepper, Michael
Palmstrøm, Christopher J.
author_facet Dong, Jason T.
Gul, Yilmaz
Rodriguez, Irene Villar
Engel, Aaron N.
Dempsey, Connor P.
Holmes, Stuart N.
Pepper, Michael
Palmstrøm, Christopher J.
contents Increasing the spin-orbit coupling in InGaAs quantum wells is desirable for applications involving spintronics and topological quantum computing. Digital alloying is an approach towards growing ternary quantum wells that enables asymmetric interfaces and compositional grading in the quantum well, which can potentially modify the spin-orbit coupling in the quantum well. The spin-orbit coupling of the quantum wells is extracted from beating patterns in the low magnetic field magnetoresistance. Digital alloying is found to modify the spin-orbit coupling by up to 138 meV\textnormalÅ. The changes induced in the spin-orbit coupling can be qualitatively understood as being due to modifications in the interfacial Rashba spin-orbit coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2507_04945
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Spin-orbit coupling in digital alloyed InGaAs quantum wells
Dong, Jason T.
Gul, Yilmaz
Rodriguez, Irene Villar
Engel, Aaron N.
Dempsey, Connor P.
Holmes, Stuart N.
Pepper, Michael
Palmstrøm, Christopher J.
Mesoscale and Nanoscale Physics
Increasing the spin-orbit coupling in InGaAs quantum wells is desirable for applications involving spintronics and topological quantum computing. Digital alloying is an approach towards growing ternary quantum wells that enables asymmetric interfaces and compositional grading in the quantum well, which can potentially modify the spin-orbit coupling in the quantum well. The spin-orbit coupling of the quantum wells is extracted from beating patterns in the low magnetic field magnetoresistance. Digital alloying is found to modify the spin-orbit coupling by up to 138 meV\textnormalÅ. The changes induced in the spin-orbit coupling can be qualitatively understood as being due to modifications in the interfacial Rashba spin-orbit coupling.
title Spin-orbit coupling in digital alloyed InGaAs quantum wells
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2507.04945