Analysis of a photon number resolving detector based on an ion Coulomb crystal inside an optical cavity
arXiv:1209.0352 · doi:10.1088/1367-2630/15/2/025021
Abstract
The ability to detect single photons with high efficiency is a crucial requirement for various quantum information applications. By combining the storage process of a quantum memory for photons with fluorescence-based quantum state measurement, it is in principle possible to achieve high efficiency photon counting in large ensembles of atoms. The large number of atoms can, however, pose significant problems in terms of noise stemming from imperfect initial state preparation and off-resonant fluorescence. We propose a concrete implementation of a photon number resolving detector based on an ion Coulomb crystal inside a moderately high-finesse optical cavity. The cavity enhancement leads to an effective optical depth of 15 for a finesse of 3000 with only about 1500 ions interacting with the light field. We show that these values allow for essentially noiseless detection with an efficiency larger than 90%. Moderate experimental parameters allow for repetition rates of about 5 kHz, limited by the time needed for fluorescence collection. Potential applications are discussed.
5 pages, 3 figures. V2: improved version corresponding to the published version
References in corpus (5)
- Efficient and long-lived quantum memory with cold atoms inside a ring cavity
- Photon storage in Lambda-type optically dense atomic media. I. Cavity model
- Optimal light storage in atomic vapor
- Modes of Oscillation in Radiofrequency Paul Traps
- Efficient coherent internal state transfer in trapped ions using Stimulated Raman Adiabatic Passage
Cited by in corpus (7)
- Prospective applications of optical quantum memories
- Roadmap on STIRAP applications
- Focus on Quantum Memories
- General scheme for the construction of a protected qubit subspace
- Narrowband photon pairs with independent frequency tuning for quantum light-matter interactions
- Sub-Micron Positioning of Trapped Ions with Respect to the Absolute Center of a Standing Wave Cavity Field
- Transient dynamics in cavity electromagnetically induced transparency with ion Coulomb crystals