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Few-Body Quantum Rings : An Exact Diagonalization Approach

Chergui, Lila LU (2025)
Abstract
This thesis investigates few-body quantum rings, particularly in the study of ultracold bosonic gases and nanowire quantum dots. These systems are investigated numerically using exact diagonalization methods. This dissertation contains five chapters which develop numerical and theoretical background for understanding the few-body calculations and analysis contained in the four included papers:

Paper I explores the formation of few-body analogues to self-bound quantum droplets in binary bosonic mixtures in one dimension. Signatures of spontaneous symmetry breaking associated with localization in the ground state are observed in the low-lying energy spectra. This interpretation of the spectra is supported by the ground state pair... (More)
This thesis investigates few-body quantum rings, particularly in the study of ultracold bosonic gases and nanowire quantum dots. These systems are investigated numerically using exact diagonalization methods. This dissertation contains five chapters which develop numerical and theoretical background for understanding the few-body calculations and analysis contained in the four included papers:

Paper I explores the formation of few-body analogues to self-bound quantum droplets in binary bosonic mixtures in one dimension. Signatures of spontaneous symmetry breaking associated with localization in the ground state are observed in the low-lying energy spectra. This interpretation of the spectra is supported by the ground state pair correlations and an analysis of the dynamical properties of the system via the transition matrix elements.

Paper II provides a mini-review of some important concepts in the field of highly-dilute self-bound quantum droplets, including a discussion of the signatures of droplets in the few-body limit.

Paper III demonstrates that a quantum dot formed in the cross section of an InAs nanowire can be tuned to generate an energy spectrum consistent with that of an ideal quantum ring. It is shown that the strong spin-orbit interaction experienced by electrons confined to this rotationally symmetric potential is protective against orbital scattering in the presence of a perturbation to the potentials rotational symmetry.

Paper IV investigates localization in few-body bosonic systems with a single impurity. The presence of few-body precursors of Higgs-Anderson and Nambu-Goldstone like modes are observed in the theoretical energy spectra. By tuning the impurity-boson mass ratio, the transition from a spontaneous to an explicit breaking of the rotational symmetry of the ring system is investigated. (Less)
Please use this url to cite or link to this publication:
author
supervisor
opponent
  • Prof. Busch, Thomas, OIST, Japan.
organization
publishing date
type
Thesis
publication status
published
subject
keywords
few-body physics, quantum rings, exact diagonalization, ultracold atomic gases, binary Bose mixtures, nanowires, quantum dots
pages
96 pages
publisher
Department of Physics, Lund University
defense location
Lecture Hall Rydbergsalen, Department of Physics, Professorsgatan 1, Faculty of Engineering LTH, Lund University, Lund.
defense date
2025-02-28 13:00:00
ISBN
978-91-8104-379-2
978-91-8104-378-5
language
English
LU publication?
yes
id
a7fe0009-f8b1-4f4c-893f-ef7624dae6df
date added to LUP
2025-01-29 14:34:41
date last changed
2025-04-04 14:29:34
@phdthesis{a7fe0009-f8b1-4f4c-893f-ef7624dae6df,
  abstract     = {{This thesis investigates few-body quantum rings, particularly in the study of ultracold bosonic gases and nanowire quantum dots. These systems are investigated numerically using exact diagonalization methods. This dissertation contains five chapters which develop numerical and theoretical background for understanding the few-body calculations and analysis contained in the four included papers: <br/><br/>Paper I explores the formation of few-body analogues to self-bound quantum droplets in binary bosonic mixtures in one dimension. Signatures of spontaneous symmetry breaking associated with localization in the ground state are observed in the low-lying energy spectra. This interpretation of the spectra is supported by the ground state pair correlations and an analysis of the dynamical properties of the system via the transition matrix elements. <br/><br/>Paper II provides a mini-review of some important concepts in the field of highly-dilute self-bound quantum droplets, including a discussion of the signatures of droplets in the few-body limit. <br/><br/>Paper III demonstrates that a quantum dot formed in the cross section of an InAs nanowire can be tuned to generate an energy spectrum consistent with that of an ideal quantum ring. It is shown that the strong spin-orbit interaction experienced by electrons confined to this rotationally symmetric potential is protective against orbital scattering in the presence of a perturbation to the potentials rotational symmetry. <br/><br/>Paper IV investigates localization in few-body bosonic systems with a single impurity. The presence of few-body precursors of Higgs-Anderson and Nambu-Goldstone like modes are observed in the theoretical energy spectra. By tuning the impurity-boson mass ratio, the transition from a spontaneous to an explicit breaking of the rotational symmetry of the ring system is investigated.}},
  author       = {{Chergui, Lila}},
  isbn         = {{978-91-8104-379-2}},
  keywords     = {{few-body physics; quantum rings; exact diagonalization; ultracold atomic gases; binary Bose mixtures; nanowires; quantum dots}},
  language     = {{eng}},
  month        = {{02}},
  publisher    = {{Department of Physics, Lund University}},
  school       = {{Lund University}},
  title        = {{Few-Body Quantum Rings : An Exact Diagonalization Approach}},
  url          = {{https://lup.lub.lu.se/search/files/207317018/Thesis_Chergui.pdf}},
  year         = {{2025}},
}