Ultracold mechanical resonators coupled to atoms in an optical lattice
Abstract
We propose an experiment utilizing an array of cooled microcantilevers coupled to a sample of ultracold atoms trapped near a microfabricated surface. The cantilevers allow individual lattice site addressing for atomic state control and readout, and potentially may be useful in optical lattice quantum computation schemes. Assuming resonators can be cooled to their vibrational ground state, the implementation of a two-qubit controlled-NOT gate with atomic internal states and the motional states of the resonator is described. We also consider a protocol for entangling two or more cantilevers on the atom chip with different resonance frequencies, using the trapped atoms as an intermediary. Although similar experiments could be carried out with magnetic microchip traps, the optical confinement scheme we consider may exhibit reduced near-field magnetic noise and decoherence. Prospects for using this system for tests of quantum mechanics at macroscopic scales or quantum information processing are discussed.
- Publication:
-
Physical Review A
- Pub Date:
- September 2009
- DOI:
- 10.1103/PhysRevA.80.032317
- arXiv:
- arXiv:0906.4726
- Bibcode:
- 2009PhRvA..80c2317G
- Keywords:
-
- Quantum information;
- Atoms in optical lattices;
- Micromechanical devices and systems;
- 03.67.-a;
- 37.10.Jk;
- 07.10.Cm;
- Quantum information;
- Atoms in optical lattices;
- Micromechanical devices and systems;
- Quantum Physics;
- Condensed Matter - Mesoscale and Nanoscale Physics;
- Physics - Atomic Physics
- E-Print:
- 5 pages, 3 figures