Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells

This work presents optical studies of electron spin dynamics in gallium arsenide (GaAs) quantum wells, focusing on the effect of inversion asymmetric confinement potentials on spin lifetimes in quantum wells grown on (110)-oriented substrates. Inversion asymmetry in the presence of the spinorbit int...

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Main Author: Eldridge, Peter Stephen
Other Authors: Harley, Richard
Published: University of Southampton 2009
Subjects:
Online Access:https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.509488
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spelling ndltd-bl.uk-oai-ethos.bl.uk-5094882018-09-05T03:23:37ZEffects of asymmetry on electron spin dynamics in gallium arsenide quantum wellsEldridge, Peter StephenHarley, Richard2009This work presents optical studies of electron spin dynamics in gallium arsenide (GaAs) quantum wells, focusing on the effect of inversion asymmetric confinement potentials on spin lifetimes in quantum wells grown on (110)-oriented substrates. Inversion asymmetry in the presence of the spinorbit interaction offers the possibility of complete control of electron spin dynamics in GaAs quantum wells. Symmetry arguments predict any inversion asymmetric two dimensional potential will reduce spin lifetimes via the Dyakonov-Perel spin relaxation mechanism. One aim of this work has been to make a comparison of the effect produced by an electric field to that from alloy engineering. The suppression of the Dyakonov-Perel spin relaxation mechanism in (110) quantum wells makes them ideal candidates for measuring increases in spin relaxation due to asymmetry. To measure temporal spin dynamics, the time-resolved Kerr rotation technique was adapted in order to compensate for reduced rotational symmetry in the (110) crystallographic direction. An investigation into the effect of a transverse electric field on electron spin lifetimes was conducted. By combining spin lifetime with electron scattering time measurements it was possible to provide the first direct measurement of the Rashba coefficient. There is good agreement with k.p theory at low temperatures; however there is an unexplained increase with temperature. Spin dynamics measurements were carried out on quantum wells with asymmetric alloy composition. Through the combination of electron spin lifetime and electron scattering time measurements it was shown that the effect of alloy engineering on electron spin dynamics is very small. This is consistent with theoretical predictions and highlights the importance of considering both conduction and valence band potentials for the understanding of the effect of asymmetry on electron spin dynamics in quantum wells.537.622QC PhysicsUniversity of Southamptonhttps://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.509488https://eprints.soton.ac.uk/69729/Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 537.622
QC Physics
spellingShingle 537.622
QC Physics
Eldridge, Peter Stephen
Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
description This work presents optical studies of electron spin dynamics in gallium arsenide (GaAs) quantum wells, focusing on the effect of inversion asymmetric confinement potentials on spin lifetimes in quantum wells grown on (110)-oriented substrates. Inversion asymmetry in the presence of the spinorbit interaction offers the possibility of complete control of electron spin dynamics in GaAs quantum wells. Symmetry arguments predict any inversion asymmetric two dimensional potential will reduce spin lifetimes via the Dyakonov-Perel spin relaxation mechanism. One aim of this work has been to make a comparison of the effect produced by an electric field to that from alloy engineering. The suppression of the Dyakonov-Perel spin relaxation mechanism in (110) quantum wells makes them ideal candidates for measuring increases in spin relaxation due to asymmetry. To measure temporal spin dynamics, the time-resolved Kerr rotation technique was adapted in order to compensate for reduced rotational symmetry in the (110) crystallographic direction. An investigation into the effect of a transverse electric field on electron spin lifetimes was conducted. By combining spin lifetime with electron scattering time measurements it was possible to provide the first direct measurement of the Rashba coefficient. There is good agreement with k.p theory at low temperatures; however there is an unexplained increase with temperature. Spin dynamics measurements were carried out on quantum wells with asymmetric alloy composition. Through the combination of electron spin lifetime and electron scattering time measurements it was shown that the effect of alloy engineering on electron spin dynamics is very small. This is consistent with theoretical predictions and highlights the importance of considering both conduction and valence band potentials for the understanding of the effect of asymmetry on electron spin dynamics in quantum wells.
author2 Harley, Richard
author_facet Harley, Richard
Eldridge, Peter Stephen
author Eldridge, Peter Stephen
author_sort Eldridge, Peter Stephen
title Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
title_short Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
title_full Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
title_fullStr Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
title_full_unstemmed Effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
title_sort effects of asymmetry on electron spin dynamics in gallium arsenide quantum wells
publisher University of Southampton
publishDate 2009
url https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.509488
work_keys_str_mv AT eldridgepeterstephen effectsofasymmetryonelectronspindynamicsingalliumarsenidequantumwells
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