Abnormal Superfluid Fraction of Harmonically Trapped Few-Fermion Systems
arXiv:1312.4470 · doi:10.1103/PhysRevLett.112.235301
Abstract
Superfluidity is a fascinating phenomenon that, at the macroscopic scale, leads to dissipationless flow and the emergence of vortices. While these macroscopic manifestations of superfluidity are well described by theories that have their origin in Landau's two-fluid model, our microscopic understanding of superfluidity is far from complete. Using analytical and numerical \textit{ab initio} approaches, this paper determines the superfluid fraction and local superfluid density of small harmonically trapped two-component Fermi gases as a function of the interaction strength and temperature. At low temperature, we find that the superfluid fraction is, in certain regions of the parameter space, negative. This counterintuitive finding is traced back to the symmetry of the system's ground state wave function, which gives rise to a diverging quantum moment of inertia . Analogous abnormal behavior of has been observed in even-odd nuclei at low temperature. Our predictions can be tested in modern cold atom experiments.
5 pages, 4 figures
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- Abnormal superfluid fraction and structural properties of electrons in 2D and 3D quantum dots: an ab initio path-integral Monte Carlo study
- Are smooth pseudopotentials a good choice for representing short-range interactions?
- Superfluid density reduction and spin-imbalanced pairing in a fermionic superfluid due to dynamical boson exchange