Temperature Dependence of the Density and Excitations of Dipolar Droplets
S. Furkan Ozturk, Enes Aybar, M. O. Oktel

TL;DR
This paper investigates how temperature influences the density and collective excitations of dipolar quantum droplets, revealing significant effects near phase transitions and providing numerical validation of theoretical models.
Contribution
It numerically confirms the validity of the Gaussian variational ansatz and explores temperature effects on density and oscillation frequencies in dipolar droplets.
Findings
Density is most affected by temperature near the transition between pancake and droplet shapes.
Oscillation frequencies vary significantly with temperature close to the transition.
Numerical results agree well with the Gaussian ansatz in large parameter regimes.
Abstract
Droplet states of ultracold gases which are stabilized by fluctuations have recently been observed for dipolar and two component Bose gases. These systems present a novel form of equilibrium where an instability at the mean field level is arrested by higher order correlations making the droplet states sensitive probes of fluctuations. In a recent paper, we argued that thermal fluctuations can play an important role for droplets even at low temperatures where the non-condensed density is much smaller than the condensate density. We used the Hartree-Fock-Bogoliubov theory together with local density approximation for fluctuations to obtain a generalized Gross Pitaevskii (GP) equation and solved it with a Gaussian variational ansatz to show that the transition between the low density and droplet states can be significantly modified by the temperature. In this paper, we first solve the same…
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