Scaling laws for evaporative cooling in time-dependent optical traps
- 12 October 2001
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 64 (5), 051403
- https://doi.org/10.1103/physreva.64.051403
Abstract
We derive scaling laws for the number of atoms, collision rate, and phase-space density as a function of trap depth for evaporative cooling in an adiabadically lowered optical trap. The results are in excellent agreement with a Boltzmann equation model and show that very large increases in phase-space density can be obtained without excessive slowing of the evaporation rate. Predictions are in reasonable agreement with a recent experiment that achieves Bose-Einstein condensation by evaporation in an optical trap. We also discuss evaporation of fermionic mixtures and explain why Pauli blocking does not strongly inhibit cooling.Keywords
This publication has 21 references indexed in Scilit:
- Quasipure Bose-Einstein Condensate Immersed in a Fermi SeaPhysical Review Letters, 2001
- Observation of Fermi Pressure in a Gas of Trapped AtomsScience, 2001
- Loading and compressing Cs atoms in a very far-off-resonant light trapPhysical Review A, 2001
- Stable, Strongly Attractive, Two-State Mixture of Lithium Fermions in an Optical TrapPhysical Review Letters, 2000
- Cooper pairing in ultracoldusing Feshbach resonancesPhysical Review A, 2000
- Onset of Fermi Degeneracy in a Trapped Atomic GasScience, 1999
- Optical Confinement of a Bose-Einstein CondensatePhysical Review Letters, 1998
- Superfluid state of atomicin a magnetic trapPhysical Review A, 1997
- Superfluidity of Spin-PolarizedLiPhysical Review Letters, 1996
- Far-off-resonance optical trapping of atomsPhysical Review A, 1993