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When a superfluid flows past an obstacle, quantized vortices can be created in the wake above a certain critical velocity. In the experiment by Kwon et al. [Phys. Rev. A 91, 053615 (2015)], the critical velocity $v_c$ was measured for…

Quantum Gases · Physics 2023-03-01 Haneul Kwak , Jong Heum Jung , Yong-il Shin

We experimentally investigate the periodic vortex shedding dynamics in a highly oblate Bose-Einstein condensate using a moving penetrable Gaussian obstacle. The shedding frequency $f_v$ is measured as a function of the obstacle velocity $v$…

Quantum Gases · Physics 2022-08-31 Younghoon Lim , Yangheon Lee , Junhong Goo , Dalmin Bae , Yong-il Shin

Raman et al. have found experimental evidence for a critical velocity under which there is no dissipation when a detuned laser beam is moved in a Bose-Einstein condensate. We analyze the origin of this critical velocity in the low density…

Condensed Matter · Physics 2009-11-10 Amandine Aftalion , Qiang Du , Yves Pomeau

We consider the setup employed in a recent experiment (Ramanathan et al 2011 Phys. Rev. Lett. 106 130401) devoted to the study of the instability of the superfluid flow of a toroidal Bose-Einstein condensate in presence of a repulsive…

Quantum Gases · Physics 2015-06-11 Francesco Piazza , Lee A. Collins , Augusto Smerzi

Vortex shedding from a microsphere oscillating in superfluid $^4$He at mK temperatures is compared with that from a laser beam moving in a Bose-Einstein condensate (BEC) as observed by other authors. In particular, in either case a linear…

Other Condensed Matter · Physics 2016-08-24 Wilfried Schoepe

We map out the critical velocity in the crossover from Bose-Einstein condensation (BEC) to Bardeen-Cooper-Schrieffer superfluidity with ultracold $^{6}$Li gases. A small attractive potential is dragged along lines of constant column…

By considering the stability of potential flow of a superfluid around large obstacles of size R, we derive an analytical result for the critical velocity which is of order v_c \sim \hbar / mR, scaling inversely with obstacle size, in…

Soft Condensed Matter · Physics 2009-10-31 J. S. Stiessberger , W. Zwerger

According to the Landau criterion for superfluidity, a Bose-Einstein condensate flowing with a group velocity smaller than the sound velocity is energetically stable to the presence of perturbing potentials. We found that this is strictly…

Other Condensed Matter · Physics 2009-11-11 Sara Ianeselli , Chiara Menotti , Augusto Smerzi

We numerically model experiments on the superfluid critical velocity of an elongated, harmonically trapped Bose-Einstein condensate as reported by [P. Engels and C. Atherton, Phys. Rev. Lett. 99, 160405 (2007)]. These experiments swept an…

Quantum Gases · Physics 2019-10-01 Chao Feng , Matthew J. Davis

We investigate vortex shedding from a moving penetrable obstacle in a highly oblate Bose-Einstein condensate. The penetrable obstacle is formed by a repulsive Gaussian laser beam that has the potential barrier height lower than the chemical…

Quantum Gases · Physics 2015-09-23 Woo Jin Kwon , Sang Won Seo , Yong-il Shin

Above a critical velocity, the dominant mechanism of energy transfer between a moving object and a dilute Bose-Einstein condensate is vortex formation. In this paper, we discuss the critical velocity for vortex formation and the link…

Condensed Matter · Physics 2009-10-31 T. Winiecki , B. Jackson , J. F. McCann , C. S. Adams

A phenomenon of energy dissipation in Bose-Einstein condensates is studied based on a microscopic model for the motion of impurity. Critical velocities for onset of energy dissipation are obtained for periodic motions, such as a dipole-like…

Statistical Mechanics · Physics 2009-11-11 Jun Suzuki

We report on a numerical study of the critical velocity for creation of quantized vortices by a moving Gaussian obstacle in a trapped Bose-Einstein condensate, modeled by the Gross-Pitaevskii equation. We pay attention to impact of density…

Quantum Gases · Physics 2023-12-05 Haruya Kokubo , Kenichi Kasamatsu

We describe a dramatic decrease of the critical velocity in elongated cylindrical Bose-Einstein condensates which originates from the non-uniform character of the radial density profile. We discuss this mechanism with respect to recent…

Soft Condensed Matter · Physics 2009-10-31 P. O. Fedichev , G. V. Shlyapnikov

We investigate the superfluid properties of a dipolar Bose-Einstein condensate (BEC) in a fully three-dimensional trap. Specifically, we calculate a superfluid critical velocity for this system by applying the Landau criterion to its…

Quantum Gases · Physics 2015-05-14 Ryan M. Wilson , Shai Ronen , John L. Bohn

The flow of a uniform Bose gas at speeds greater than the Landau critical velocity, v_c, does not necessarily destroy superfluidity, but rather need only lead to a decrease of the superfluid mass density, {\rho}_s. Analyzing a weakly…

Quantum Gases · Physics 2015-06-05 Gordon Baym , C. J. Pethick

We investigate the superfluid behavior of a Bose-Einstein condensate of $^6$Li molecules. In the experiment by Weimer et al., Phys. Rev. Lett. 114, 095301 (2015) a condensate is stirred by a weak, red-detuned laser beam along a circular…

We study the critical vortex shedding in a strongly interacting fermionic superfluid of $^{6}$Li across the BEC-BCS crossover. By moving an optical obstacle in the sample and directly imaging the vortices after time of flight, the critical…

Quantum Gases · Physics 2018-12-05 Jee Woo Park , Bumsuk Ko , Yong-il Shin

We have studied dissipation in a Bose--Einstein condensed gas by moving a blue detuned laser beam through the condensate at different velocities. Strong heating was observed only above a critical velocity.

Soft Condensed Matter · Physics 2019-08-17 C. Raman , M. Kohl , R. Onofrio , D. S. Durfee , C. E. Kuklewicz , Z. Hadzibabic , W. Ketterle

We use classical field simulations of the homogeneous Bose gas to study the breakdown of superflow due to vortex nucleation past a cylindrical obstacle at finite temperature. Thermal fluctuations modify the vortex nucleation from the…

Quantum Gases · Physics 2016-02-26 G. W. Stagg , R. W. Pattinson , C. F. Barenghi , N. G. Parker
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