Universal Quantum Viscosity in a Unitary Fermi Gas
arXiv:1007.2625 · doi:10.1126/science.1195219
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 where is the density, while at high temperatures the natural scale is where is the thermal momentum. We employ breathing mode damping to measure the shear viscosity at low temperature. At high temperature , we employ anisotropic expansion of the cloud to find the viscosity, which exhibits precise 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.
13 pages, 3 figures
References in corpus (18)
- Many-Body Physics with Ultracold Gases
- Viscosity in Strongly Interacting Quantum Field Theories from Black Hole Physics
- Theory of ultracold Fermi gases
- Vortices and Superfluidity in a Strongly Interacting Fermi Gas
- Observation of the Pairing Gap in a Strongly Interacting Fermi Gas
- Collective excitations of a degenerate gas at the BEC-BCS crossover
- 200 A GeV Au+Au collisions serve a nearly perfect quark-gluon liquid
- On the Strongly-Interacting Low-Viscosity Matter Created in Relativistic Nuclear Collisions
- Viscosity and scale invariance in the unitary Fermi gas
- The potential energy of a K Fermi gas in the BCS-BEC crossover
- Measurement of the Entropy and Critical Temperature of a Strongly Interacting Fermi Gas
- Thermodynamic Measurements in a Strongly Interacting Fermi Gas
- The Shear Viscosity to Entropy Density Ratio of Trapped Fermions in the Unitarity Limit
- Shear viscosity and damping for a Fermi gas in the unitarity limit
- Magnetic field control of elastic scattering in a cold gas of fermionic lithium atoms
- Virial theorems for trapped cold atoms
- Is a gas of strongly interacting atomic fermions a nearly perfect fluid?
- Spin diffusion in Fermi gases
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- Apparent low-energy scale invariance in two-dimensional Fermi gases
- Universal properties of Fermi gases in arbitrary dimensions
- Observation of the Leggett-Rice effect in a unitary Fermi gas
- Hydrodynamic fluctuations and the minimum shear viscosity of the dilute Fermi gas at unitarity
- Quantum critical transport in the unitary Fermi gas
- Hydrodynamics of cold atomic gases in the limit of weak nonlinearity, dispersion and dissipation
- Shear Viscosity of a Unitary Fermi Gas
- Microscopic Approach to Shear Viscosities in Superfluid Gases: From BCS to BEC
- Shear viscosity and spin diffusion in a two-dimensional Fermi gas
- Nearly Perfect Fluidity in a High Temperature Superconductor
- Shock waves in strongly interacting Fermi gas from time-dependent density functional calculations
- Collective excitations of quasi-two-dimensional trapped dipolar fermions: transition from collisionless to hydrodynamic regime
- Virial expansion coefficients in the harmonic approximation
- Numerical solution of the Boltzmann equation for trapped Fermi gases with in-medium effects
- All-Optical Production of quantum degeneracy and molecular BEC of Li
- Medium effects and the shear viscosity of the dilute Fermi gas away from the conformal limit
- Shear viscosity and spin sum rules in strongly interacting Fermi gases
- Quantum corrections to screening at strong coupling