We investigate the interplay of temperature and trap effects in cold particle systems at their quantum critical regime, such as cold bosonic atoms in optical lattices at the transitions between Mott-insulator and superfluid phases. The theoretical framework is provided by the one-dimensional Bose-Hubbard model in the presence of an external trapping potential, and the trap-size scaling theory describing the large trap-size behavior at a quantum critical point. We present numerical results for the low-temperature behavior of the particle density and the density-density correlation function at the Mott transitions, and within the gapless superfluid phase
UnrestrictedFollowing the recent advances in controlling ultracold quantum gases that have led to th...
We study the Bose-Hubbard model using the finite size density matrix renormalization group method. W...
We investigate the effects of finite temperature on ultracold Bose atoms confined in an optical latt...
We investigate the interplay of temperature and trap effects in cold particle systems at their quan...
We study the quantum (zero-temperature) critical behaviors of confined particle systems described b...
We investigate the critical behavior of trapped particle systems at the low-temperature superfluid t...
We study some aspects of equilibrium and off equilibrium quantum dynamics of dilute bosonic gases i...
4 pages, 5 figuresWe study the dynamic response of ultracold bosons trapped in one-dimensional optic...
4 pages, 5 figuresWe study the dynamic response of ultracold bosons trapped in one-dimensional optic...
We study some aspects of equilibrium and off equilibrium quantum dynamics of dilute bosonic gases i...
We use the density-matrix renormalization group method to investigate ground-state and dynamic prope...
RevTex, 16 pages, with 28 figures, extended disussion on flat confinement potentialsWe study propert...
We develop a strong-coupling (t << U) expansion technique for calculating the density profile for bo...
RevTex, 16 pages, with 28 figures, extended disussion on flat confinement potentialsWe study propert...
We develop a strong-coupling (t << U) expansion technique for calculating the density profile for bo...
UnrestrictedFollowing the recent advances in controlling ultracold quantum gases that have led to th...
We study the Bose-Hubbard model using the finite size density matrix renormalization group method. W...
We investigate the effects of finite temperature on ultracold Bose atoms confined in an optical latt...
We investigate the interplay of temperature and trap effects in cold particle systems at their quan...
We study the quantum (zero-temperature) critical behaviors of confined particle systems described b...
We investigate the critical behavior of trapped particle systems at the low-temperature superfluid t...
We study some aspects of equilibrium and off equilibrium quantum dynamics of dilute bosonic gases i...
4 pages, 5 figuresWe study the dynamic response of ultracold bosons trapped in one-dimensional optic...
4 pages, 5 figuresWe study the dynamic response of ultracold bosons trapped in one-dimensional optic...
We study some aspects of equilibrium and off equilibrium quantum dynamics of dilute bosonic gases i...
We use the density-matrix renormalization group method to investigate ground-state and dynamic prope...
RevTex, 16 pages, with 28 figures, extended disussion on flat confinement potentialsWe study propert...
We develop a strong-coupling (t << U) expansion technique for calculating the density profile for bo...
RevTex, 16 pages, with 28 figures, extended disussion on flat confinement potentialsWe study propert...
We develop a strong-coupling (t << U) expansion technique for calculating the density profile for bo...
UnrestrictedFollowing the recent advances in controlling ultracold quantum gases that have led to th...
We study the Bose-Hubbard model using the finite size density matrix renormalization group method. W...
We investigate the effects of finite temperature on ultracold Bose atoms confined in an optical latt...