Observation of Pauli blocking in light scattering from quantum degenerate fermions
arXiv:2103.02319 · doi:10.1126/science.abh3470
Abstract
The Pauli exclusion principle forbids indistinguishable fermions to occupy the same quantum mechanical state. Its implications are profound and it for example accounts for the electronic shell structure of atoms. Here we perform measurements on the scattering of off-resonant light from ultracold gasses of fermionic atoms. For Fermi gases in the quantum degenerate regime, we observe a marked suppression in light scattering as compared to a similarly prepared thermal Bose gas. We attribute the observed increased transmission of light through the quantum degenerate Fermi gas to Pauli blocking, where Fermi-Dirac statistics causes atoms to occupy a large region of the momentum space limiting the number of accessible states for the scattered atom. Our work confirms a longstanding fundamental result in the theory of the optical response of quantum gases and is an important step towards novel cooling and thermometry mechanisms for degenerate Fermi gases.
References in corpus (5)
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- Direct laser cooling to Bose-Einstein condensation in a dipole trap
- Light scattering for thermometry of fermionic atoms in an optical lattice
- Observation of Microcanonical Atom Number Fluctuations in a Bose-Einstein Condensate
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Cited by in corpus (8)
- Atomic interferometer based on optical tweezers
- Pauli blocking of stimulated emission in a degenerate Fermi gas
- Quantum Monte Carlo study of the role of p-wave interactions in ultracold repulsive Fermi gases
- Observation of bosonic stimulation in light scattering
- Quantum Back-action Limits in Dispersively Measured Bose-Einstein Condensates
- Disentangling Pauli blocking of atomic decay from cooperative radiation and atomic motion in a 2D Fermi gas
- Collective dynamical Fermi suppression of optically-induced inelastic scattering
- Suppression and enhancement of bosonic stimulation by atomic interactions