Single-atom lasing induced atomic self trapping
arXiv:quant-ph/0312181 · doi:10.1103/PhysRevLett.93.063002
Abstract
We study motion and field dynamics of a single-atom laser consisting of a single incoherently pumped free atom moving in an optical high-{\it Q} resonator. For sufficient pumping, the system starts lasing whenever the atom is close to a field antinode. If the field mode eigenfrequency is larger than the atomic transition frequency, the generated laser light attracts the atom to the field antinode and cools its motion. Using quantum Monte Carlo wave function simulations, we investigate this coupled atom-field dynamics including photon recoil and cavity decay. In the regime of strong coupling, the generated field shows strong nonclassical features like photon antibunching, and the atom is spatially confined and cooled to sub-Doppler temperatures.
4 pages, 6 figures
References in corpus (1)
Cited by in corpus (14)
- Cold atoms in cavity-generated dynamical optical potentials
- Supercooling of Atoms in an Optical Resonator
- Mechanical effects of optical resonators on driven trapped atoms: Ground state cooling in a high finesse cavity
- Superradiant Cooling, Trapping, and Lasing of Dipole-Interacting Clock Atoms
- Spontaneously generated atomic entanglement in free space: reinforced by incoherent pumping
- Semiclassical theory of synchronization-assisted cooling
- Resonance fluorescence of a cold atom in a high-finesse resonator
- Theory of a single-atom laser including light forces
- Lasing and cooling in a hot cavity
- Coherent control of atomic tunneling
- Continuous narrowband lasing with coherently driven V-level atoms
- An atom-photon pair laser
- Twin stimulated amplification of light and matter waves in an atom-photon pair laser
- Mean-field Floquet theory for a three-level cold-atom laser