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dc.contributor.author
Hruby, Lorenz
dc.contributor.supervisor
Esslinger, Tilman
dc.contributor.supervisor
Morigi, Giovanna
dc.date.accessioned
2018-12-03T11:52:06Z
dc.date.available
2018-12-03T10:22:34Z
dc.date.available
2018-12-03T11:52:06Z
dc.date.issued
2018
dc.identifier.uri
http://hdl.handle.net/20.500.11850/308115
dc.identifier.doi
10.3929/ethz-b-000308115
dc.description.abstract
This thesis reports on the first experimental realization and study of a strongly correlated many-body system with tunable short- and global-range interactions using an ultracold atomic gas. Thereto, a Rubidium-87 Bose-Einstein condensate is loaded into a three-dimensional optical lattice, which strongly enhances on-site interactions between the atoms over their kinetic energy. While collisional interactions are naturally present in such a system, longer-ranged interactions are more elusive. By coupling the cloud to a single field mode of a high-finesse optical cavity, we achieve a global atom-atom coupling stemming from the delocalized nature of the cavity field. In a large range of parameters, this system is well described by a Bose-Hubbard model with additional global-range interaction. We map the phase diagram of the system by tuning the relative strengths of kinetic energy, short-range interactions, and global-range interactions, and detect four phases: a superfluid, a lattice supersolid, a Mott insulating, and a charge density wave phase. To study the system in the strongly interacting regime, we vary the strength of global-range interactions at the phase transition between the Mott insulator and the charge density wave at different rates and observe metastable behavior and hysteresis between the states. Our findings are supported by a theoretical toy model and indicate a first-order phase transition. While first-order phase transitions are generally common, they are unusual in ultracold atom experiments. From the photon flux leaking from the cavity, we deduce the microscopic dynamics of the transition. This dynamics points at an avalanche of several thousand atoms resonantly tunneling to their neighboring lattice sites within the timescale of the single particle dynamics. In a subsequent experiment, we study different types of global-range interactions acting on either the density or the spin of the system. Moving from scalar atom-light coupling between the cavity mode and the atomic cloud to a vectorial coupling, we observe the formation of a spin texture in a Bose-Einstein condensate of two internal spin states. One of the limiting factors for ultracold atom experiments is the long time needed to cool the atomic sample compared to the duration of the actual experiment. In the course of this thesis a range of technical upgrades of the experimental apparatus have successively reduced the preparation time by more than a factor of two. Additionally, the adoption of a comprehensive interlock framework allows for a continuous and remote operation of the machine by protecting the apparatus in case of malfunction.
en_US
dc.format
application/pdf
en_US
dc.language.iso
en
en_US
dc.publisher
ETH Zurich
en_US
dc.rights.uri
http://rightsstatements.org/page/InC-NC/1.0/
dc.subject
Strongly correlated systems
en_US
dc.subject
ATOMFALLEN UND MIKROFALLEN (ATOMPHYSIK)
en_US
dc.subject
STARK KORRELIERTE SYSTEME (PHYSIK DER KONDENSIERTEN MATERIE)
en_US
dc.subject
Many-body quantum mechanics
en_US
dc.subject
Cavity resonators
en_US
dc.subject
Bose Einstein condensate
en_US
dc.subject
Bose – Hubbard model
en_US
dc.subject
BOSE-EINSTEIN CONDENSATION
en_US
dc.title
Metastability and Quench Dynamics in a Long-Range Interacting Hubbard Model
en_US
dc.type
Doctoral Thesis
dc.rights.license
In Copyright - Non-Commercial Use Permitted
ethz.size
162 p.
en_US
ethz.code.ddc
DDC - DDC::5 - Science::530 - Physics
ethz.code.ddc
DDC - DDC::5 - Science::530 - Physics
en_US
ethz.identifier.diss
25241
en_US
ethz.publication.place
Zurich
en_US
ethz.publication.status
published
en_US
ethz.leitzahl
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02010 - Dep. Physik / Dep. of Physics::02510 - Institut für Quantenelektronik / Institute for Quantum Electronics::03599 - Esslinger, Tilman / Esslinger, Tilman
en_US
ethz.leitzahl.certified
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02010 - Dep. Physik / Dep. of Physics::02510 - Institut für Quantenelektronik / Institute for Quantum Electronics::03599 - Esslinger, Tilman / Esslinger, Tilman
en_US
ethz.date.deposited
2018-12-03T10:22:36Z
ethz.source
FORM
ethz.eth
yes
en_US
ethz.availability
Open access
en_US
ethz.rosetta.installDate
2018-12-03T11:52:44Z
ethz.rosetta.lastUpdated
2020-02-15T16:11:36Z
ethz.rosetta.versionExported
true
ethz.COinS
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