We demonstrate cavity cooling of all motional degrees of freedom of an atomic ensemble using light that is far detuned from the atomic transitions by several gigahertz. The cooling is achieved by cavity-induced frequency-dependent asymmetric enhancement of the atomic emission spectrum, thereby extracting thermal kinetic energy from the atomic system. Within 100 ms, the atomic temperature is reduced from 200 to 10 μK, where the final temperature is mainly limited by the linewidth of the cavity. In principle, the technique can be applied to molecules and atoms with complex internal energy structure
Individual laser cooled atoms are delivered on demand from a single atom magneto-optic trap to a hig...
Taming quantum dynamical processes is the key to novel applications of quantum physics, e.g. in quan...
Here we analyze cavity-mediated laser cooling for an experimental setup with an external trap which ...
We propose a generic approach to nonresonant laser cooling of atoms/molecules in a bistable optical ...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
We demonstrate cavity sideband cooling of a single collective motional mode of an atomic ensemble do...
All conventional methods to laser-cool atoms rely on repeated cycles of optical pumping and spontane...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
The ability to cool and trap atoms has revolutionized atomic and ultra-cold physics. Molecular physi...
We investigate theoretically the mechanical effects of light on atoms trapped by an external potenti...
In this work the motional state of single cesium atoms strongly coupled to an optical high-finesse c...
The authors thank Peter Domokos and Helmut Ritsch for helpful discussionsWe present a mechanism fo...
The coupling of a levitated submicron particle and an optical cavity field promises access to a uni...
Laser cooling of atoms has not only enabled Bose-Einstein condensation, but has also resulted in a n...
The coupling of a levitated submicron particle and an optical cavity field promises access to a uni...
Individual laser cooled atoms are delivered on demand from a single atom magneto-optic trap to a hig...
Taming quantum dynamical processes is the key to novel applications of quantum physics, e.g. in quan...
Here we analyze cavity-mediated laser cooling for an experimental setup with an external trap which ...
We propose a generic approach to nonresonant laser cooling of atoms/molecules in a bistable optical ...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
We demonstrate cavity sideband cooling of a single collective motional mode of an atomic ensemble do...
All conventional methods to laser-cool atoms rely on repeated cycles of optical pumping and spontane...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
The ability to cool and trap atoms has revolutionized atomic and ultra-cold physics. Molecular physi...
We investigate theoretically the mechanical effects of light on atoms trapped by an external potenti...
In this work the motional state of single cesium atoms strongly coupled to an optical high-finesse c...
The authors thank Peter Domokos and Helmut Ritsch for helpful discussionsWe present a mechanism fo...
The coupling of a levitated submicron particle and an optical cavity field promises access to a uni...
Laser cooling of atoms has not only enabled Bose-Einstein condensation, but has also resulted in a n...
The coupling of a levitated submicron particle and an optical cavity field promises access to a uni...
Individual laser cooled atoms are delivered on demand from a single atom magneto-optic trap to a hig...
Taming quantum dynamical processes is the key to novel applications of quantum physics, e.g. in quan...
Here we analyze cavity-mediated laser cooling for an experimental setup with an external trap which ...