Cavity cooling of a single atom
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- 1 March 2004
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 428 (6978), 50-52
- https://doi.org/10.1038/nature02387
Abstract
All conventional methods to laser-cool atoms rely on repeated cycles of optical pumping and spontaneous emission of a photon by the atom. Spontaneous emission in a random direction provides the dissipative mechanism required to remove entropy from the atom. However, alternative cooling methods have been proposed1,2 for a single atom strongly coupled to a high-finesse cavity; the role of spontaneous emission is replaced by the escape of a photon from the cavity. Application of such cooling schemes would improve the performance of atom–cavity systems for quantum information processing3,4. Furthermore, as cavity cooling does not rely on spontaneous emission, it can be applied to systems that cannot be laser-cooled by conventional methods; these include molecules2 (which do not have a closed transition) and collective excitations of Bose condensates5, which are destroyed by randomly directed recoil kicks. Here we demonstrate cavity cooling of single rubidium atoms stored in an intracavity dipole trap. The cooling mechanism results in extended storage times and improved localization of atoms. We estimate that the observed cooling rate is at least five times larger than that produced by free-space cooling methods, for comparable excitation of the atom.Keywords
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This publication has 22 references indexed in Scilit:
- Collective Atomic Motion in an Optical Lattice Formed Inside a High Finesse CavityPhysical Review Letters, 2003
- Observation of Collective-Emission-Induced Cooling of Atoms in an Optical CavityPhysical Review Letters, 2003
- Deterministic Single-Photon Source for Distributed Quantum NetworkingPhysical Review Letters, 2002
- Quantum information processing with atoms and photonsNature, 2002
- Dissipative dynamics of Bose condensates in optical cavitiesPhysical Review A, 2001
- Laser Cooling of Atoms, Ions, or Molecules by Coherent ScatteringPhysical Review Letters, 2000
- Single slow atoms from an atomic fountain observed in a high-finesse optical cavityOptics Communications, 1999
- Cooling an atom in a weakly driven high-cavityPhysical Review A, 1998
- Cavity-Induced Atom Cooling in the Strong Coupling RegimePhysical Review Letters, 1997
- Real-time detection of individual atoms falling through a high-finesse optical cavityOptics Letters, 1996