Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells

In this thesis regimes of quantum degeneracy of electrons and holes in semiconductor quantum wells in a strong magnetic field are studied theoretically. The coherent pairing of electrons and holes results in the formation of Bose-Einstein condensate of magnetic excitons in a single-particle state wi...

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Main Author: Boţan, Vitalie
Format: Doctoral Thesis
Language:English
Published: Uppsala universitet, Fysiska institutionen 2006
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7112
http://nbn-resolving.de/urn:isbn:91-554-6636-2
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spelling ndltd-UPSALLA1-oai-DiVA.org-uu-71122013-01-08T13:04:20ZBose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum WellsengBoţan, VitalieUppsala universitet, Fysiska institutionenUppsala : Acta Universitatis Upsaliensis2006PhysicsBose-Einstein condensationmagnetic excitonselectron-hole pairselectron-hole liquidmagnetorotonsmagnetoplasmonssuperfluidityFysikIn this thesis regimes of quantum degeneracy of electrons and holes in semiconductor quantum wells in a strong magnetic field are studied theoretically. The coherent pairing of electrons and holes results in the formation of Bose-Einstein condensate of magnetic excitons in a single-particle state with wave vector <b>K</b>. We show that correlation effects due to coherent excitations drastically change the properties of excitonic gas, making possible the formation of a novel metastable state of dielectric liquid phase with positive compressibility consisting of condensed magnetoexcitons with finite momentum. On the other hand, virtual transitions to excited Landau levels cause a repulsive interaction between excitons with zero momentum, and the ground state of the system in this case is a Bose condensed gas of weakly repulsive excitons. We introduce explicitly the damping rate of the exciton level and show that three different phases can be realized in a single quantum well depending on the exciton density: excitonic dielectric liquid surrounded by weakly interacting gas of condensed excitons versus metallic electron-hole liquid. In the double quantum well system the phase transition from the excitonic dielectric liquid phase to the crystalline state of electrons and holes is predicted with the increase of the interwell separation and damping rate. We used a framework of Green's function to investigate the collective elementary excitations of the system in the presence of Bose-Einstein condensate, introducing "anomalous" two-particle Green's functions and symmetry breaking terms into the Hamiltonian. The analytical solution of secular equation was obtained in the Hartree-Fock approximation and energy spectra were calculated. The Coulomb interactions in the system results in a multiple-branch structure of the collective excitations energy spectrum. Systematic classification of the branches is proposed, and the condition of the stability of the condensed excitonic phase is discussed. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7112urn:isbn:91-554-6636-2Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Science and Technology, 1651-6214 ; 211application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Physics
Bose-Einstein condensation
magnetic excitons
electron-hole pairs
electron-hole liquid
magnetorotons
magnetoplasmons
superfluidity
Fysik
spellingShingle Physics
Bose-Einstein condensation
magnetic excitons
electron-hole pairs
electron-hole liquid
magnetorotons
magnetoplasmons
superfluidity
Fysik
Boţan, Vitalie
Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
description In this thesis regimes of quantum degeneracy of electrons and holes in semiconductor quantum wells in a strong magnetic field are studied theoretically. The coherent pairing of electrons and holes results in the formation of Bose-Einstein condensate of magnetic excitons in a single-particle state with wave vector <b>K</b>. We show that correlation effects due to coherent excitations drastically change the properties of excitonic gas, making possible the formation of a novel metastable state of dielectric liquid phase with positive compressibility consisting of condensed magnetoexcitons with finite momentum. On the other hand, virtual transitions to excited Landau levels cause a repulsive interaction between excitons with zero momentum, and the ground state of the system in this case is a Bose condensed gas of weakly repulsive excitons. We introduce explicitly the damping rate of the exciton level and show that three different phases can be realized in a single quantum well depending on the exciton density: excitonic dielectric liquid surrounded by weakly interacting gas of condensed excitons versus metallic electron-hole liquid. In the double quantum well system the phase transition from the excitonic dielectric liquid phase to the crystalline state of electrons and holes is predicted with the increase of the interwell separation and damping rate. We used a framework of Green's function to investigate the collective elementary excitations of the system in the presence of Bose-Einstein condensate, introducing "anomalous" two-particle Green's functions and symmetry breaking terms into the Hamiltonian. The analytical solution of secular equation was obtained in the Hartree-Fock approximation and energy spectra were calculated. The Coulomb interactions in the system results in a multiple-branch structure of the collective excitations energy spectrum. Systematic classification of the branches is proposed, and the condition of the stability of the condensed excitonic phase is discussed.
author Boţan, Vitalie
author_facet Boţan, Vitalie
author_sort Boţan, Vitalie
title Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
title_short Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
title_full Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
title_fullStr Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
title_full_unstemmed Bose-Einstein Condensation of Magnetic Excitons in Semiconductor Quantum Wells
title_sort bose-einstein condensation of magnetic excitons in semiconductor quantum wells
publisher Uppsala universitet, Fysiska institutionen
publishDate 2006
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7112
http://nbn-resolving.de/urn:isbn:91-554-6636-2
work_keys_str_mv AT botanvitalie boseeinsteincondensationofmagneticexcitonsinsemiconductorquantumwells
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