English

Universal Quantum Viscosity in a Unitary Fermi Gas

Quantum Gases 2011-02-09 v2 Nuclear Theory

Abstract

A Fermi gas of atoms with resonant interactions is predicted to obey universal hydrodynamics, where the shear viscosity and other transport coefficients are universal functions of the density and temperature. At low temperatures, the viscosity has a universal quantum scale n\hbar n where nn is the density, while at high temperatures the natural scale is pT3/2p_T^3/\hbar^2 where pTp_T is the thermal momentum. We employ breathing mode damping to measure the shear viscosity at low temperature. At high temperature TT, we employ anisotropic expansion of the cloud to find the viscosity, which exhibits precise T3/2T^{3/2} scaling. In both experiments, universal hydrodynamic equations including friction and heating are used to extract the viscosity. We estimate the ratio of the shear viscosity to the entropy density and compare to that of a perfect fluid.

Keywords

Cite

@article{arxiv.1007.2625,
  title  = {Universal Quantum Viscosity in a Unitary Fermi Gas},
  author = {C. Cao and E. Elliott and J. Joseph and H. Wu and J. Petricka and T. Schaefer and J. E. Thomas},
  journal= {arXiv preprint arXiv:1007.2625},
  year   = {2011}
}

Comments

13 pages, 3 figures

R2 v1 2026-06-21T15:48:36.743Z