Stochastic Phase Space Localization for a Single Particle
arXiv:quant-ph/9810022 · doi:10.1103/PhysRevA.61.053404
Abstract
We propose a feedback scheme to control the vibrational motion of a single trapped particle based on indirect measurements of its position. It results the possibility of a motional phase space uncertainty contraction, correponding to cool the particle close to the motional ground state.
9 pages, 1 figure. Concluding section and figure revised. In press on Phys. rev. A
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Cited by in corpus (14)
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- Towards feedback control of entanglement
- Continuous variable encoding by ponderomotive interaction
- Quantum feedback cooling of a single trapped ion in front of a mirror
- The Quantum Governor: Automatic quantum control and reduction of the influence of noise without measuring
- Quantum limited velocity readout and quantum feedback cooling of a trapped ion via electromagnetically induced transparency
- Time-separated entangled light pulses from a single-atom emitter
- Resonance fluorescence of a cold atom in a high-finesse resonator
- Non-Markovian Particle Dynamics in Continuously Controlled Quantum Gases
- Cavityless self-organization of ultracold atoms due to the feedback-induced phase transition
- Schroedinger-Cat Entangled State Reconstruction in the Penning Trap
- Transverse confinement in stochastic cooling of trapped atoms