We study the ground-state properties of the Bose-Hubbard model with attractive interactions on an M-site one-dimensional periodic—necklacelike—lattice, whose experimental realization in terms of ultracold atoms is promised by a recently proposed optical trapping scheme, as well as by the control over the atomic interactions and tunneling amplitudes granted by well-established optical techniques. We compare the properties of the quantum model to a semiclassical picture based on a number-conserving su͑M͒ coherent state, which results in a set of modified discrete nonlinear Schrödinger equations. We show that, owing to the presence of a correction factor ensuing from number conservation, the ground-state solution to these equations provides a ...
We simulate quantum degenerate Bose gases at finite temperatures in a grand canonical ensemble and u...
Modern quantum and atom-optical experiments allow for an unprecedented control of microscopic degr...
Motivated by the recent rapid development of the field of quantum gases in optical lattices, we pres...
We study the ground-state properties of the Bose-Hubbard model with attractive interactions on an M-...
Quantum simulation is the study of one quantum mechanical system via analog with another. In this th...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
Ultracold bosonic gases in optical lattices are strongly correlated quantum systems similar to solid...
UnrestrictedFollowing the recent advances in controlling ultracold quantum gases that have led to th...
Optical lattices make it possible to trap and coherently control large ensembles of ultracold atoms....
Abstract We study the quantum ground-state phases of the one-dimensional disordered Bose-Hubbard mo...
In this work we present the modeling of possible interactions among N neutral atoms trapped in an op...
This electronic version was submitted by the student author. The certified thesis is available in th...
Ultracold atoms in optical lattices undergo a quantum phase transition from a superfluid to a Mott i...
In this dissertation I present results for lattice boson systems based on quantum Monte Carlo simula...
We investigate quantum phase transitions occurring in a system of strongly interacting ultracold bos...
We simulate quantum degenerate Bose gases at finite temperatures in a grand canonical ensemble and u...
Modern quantum and atom-optical experiments allow for an unprecedented control of microscopic degr...
Motivated by the recent rapid development of the field of quantum gases in optical lattices, we pres...
We study the ground-state properties of the Bose-Hubbard model with attractive interactions on an M-...
Quantum simulation is the study of one quantum mechanical system via analog with another. In this th...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
Ultracold bosonic gases in optical lattices are strongly correlated quantum systems similar to solid...
UnrestrictedFollowing the recent advances in controlling ultracold quantum gases that have led to th...
Optical lattices make it possible to trap and coherently control large ensembles of ultracold atoms....
Abstract We study the quantum ground-state phases of the one-dimensional disordered Bose-Hubbard mo...
In this work we present the modeling of possible interactions among N neutral atoms trapped in an op...
This electronic version was submitted by the student author. The certified thesis is available in th...
Ultracold atoms in optical lattices undergo a quantum phase transition from a superfluid to a Mott i...
In this dissertation I present results for lattice boson systems based on quantum Monte Carlo simula...
We investigate quantum phase transitions occurring in a system of strongly interacting ultracold bos...
We simulate quantum degenerate Bose gases at finite temperatures in a grand canonical ensemble and u...
Modern quantum and atom-optical experiments allow for an unprecedented control of microscopic degr...
Motivated by the recent rapid development of the field of quantum gases in optical lattices, we pres...