L. P. Pitaevskii
University of Trento
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Featured researches published by L. P. Pitaevskii.
Reviews of Modern Physics | 1999
F. Dalfovo; S. Giorgini; L. P. Pitaevskii; S. Stringari
The phenomenon of Bose-Einstein condensation of dilute gases in traps is reviewed from a theoretical perspective. Mean-field theory provides a framework to understand the main features of the condensation and the role of interactions between particles. Various properties of these systems are discussed, including the density profiles and the energy of the ground-state configurations, the collective oscillations and the dynamics of the expansion, the condensate fraction and the thermodynamic functions. The thermodynamic limit exhibits a scaling behavior in the relevant length and energy scales. Despite the dilute nature of the gases, interactions profoundly modify the static as well as the dynamic properties of the system; the predictions of mean-field theory are in excellent agreement with available experimental results. Effects of superfluidity including the existence of quantized vortices and the reduction of the moment of inertia are discussed, as well as the consequences of coherence such as the Josephson effect and interference phenomena. The review also assesses the accuracy and limitations of the mean-field approach.
Physical Review Letters | 2007
John Obrecht; Robert Wild; Mauro Antezza; L. P. Pitaevskii; S. Stringari; Eric A. Cornell
We report on the first measurement of a temperature dependence of the Casimir-Polder force. This measurement was obtained by positioning a nearly pure 87Rb Bose-Einstein condensate a few microns from a dielectric substrate and exciting its dipole oscillation. Changes in the collective oscillation frequency of the magnetically trapped atoms result from spatial variations in the surface-atom force. In our experiment, the dielectric substrate is heated up to 605 K, while the surrounding environment is kept near room temperature (310 K). The effect of the Casimir-Polder force is measured to be nearly 3 times larger for a 605 K substrate than for a room-temperature substrate, showing a clear temperature dependence in agreement with theory.
Physical Review A | 1996
S. Giorgini; L. P. Pitaevskii; S. Stringari
By using a mean field approach, based on the Popov approximation, we calculate the temperature dependence of the condensate fraction of an interacting Bose gas confined in an anisotropic harmonic trap. For systems interacting with repulsive forces we find a significant decrease of the condensate fraction and of the critical temperature with respect to the predictions of the non-interacting model. These effects go in the opposite direction compared to the case of a homogeneous gas. An analytic result for the shift of the critical temperature holding to first order in the scattering length is also derived.
Physical Review Letters | 2012
Yun Li; L. P. Pitaevskii; S. Stringari
We consider a spin-orbit coupled configuration of spin-1/2 interacting bosons with equal Rashba and Dresselhaus couplings. The phase diagram of the system at T=0 is discussed with special emphasis on the role of the interaction treated in the mean-field approximation. For a critical value of the density and of the Raman coupling we predict the occurrence of a characteristic tricritical point separating the spin mixed, the phase separated, and the zero momentum states of the Bose gas. The corresponding quantum phases are investigated analyzing the momentum distribution, the longitudinal and transverse spin polarization, and the emergence of density fringes. The effect of harmonic trapping as well as the role of the breaking of spin symmetry in the interaction Hamiltonian are also discussed.
Physical Review A | 1996
F. Dalfovo; L. P. Pitaevskii; S. Stringari
Through a suitable expansion of the Gross-Pitaevskii equation near the classical turning point, we obtain an explicit solution for the order parameter at the boundary of a trapped Bose gas interacting with repulsive forces. The kinetic energy of the system, in terms of the classical radius R and of the harmonic oscillator length
Physical Review Letters | 2001
P. Pedri; L. P. Pitaevskii; S. Stringari; C. Fort; Sven Burger; F. S. Cataliotti; P. Maddaloni; F. Minardi; M. Inguscio
{\mathit{a}}_{\mathrm{HO}}
Physical Review A | 2004
G. E. Astrakharchik; L. P. Pitaevskii
, follows the law
Nature | 2013
Leonid A. Sidorenkov; Meng Khoon Tey; R. Grimm; Yan-Hua Hou; L. P. Pitaevskii; S. Stringari
{\mathit{E}}_{\mathrm{kin}}
Physical Review Letters | 2005
Mauro Antezza; L. P. Pitaevskii; S. Stringari
/N\ensuremath{\propto}
Physical Review Letters | 2013
Yun Li; Giovanni I. Martone; L. P. Pitaevskii; S. Stringari
{\mathit{R}}^{\mathrm{\ensuremath{-}}2}