An efficient quantum memory based on two-level atoms
arXiv:1301.0705 · doi:10.1088/1367-2630/15/8/085012
Abstract
We propose a method to implement a quantum memory for light based on ensembles of two-level atoms. Our protocol is based on controlled reversible inhomogeneous broadening (CRIB), where an external field first dephases the atomic polarization and thereby stores an incoming light pulse into collective states of the atomic ensemble, and later a reversal of the applied field leads to a rephasing of the atomic polarization and a reemission of the light. As opposed to previous proposals for CRIB based quantum memories we propose to only apply the broadening for a short period after most of the pulse has already been absorbed by the ensemble. We show that with this procedure there exist certain modes of the incoming light field which can be stored with an efficiency approaching 100% in the limit of high optical depth and long coherence time of the atoms. These results demonstrate that it is possible to operate an efficient quantum memory without any optical control fields.
References in corpus (10)
- Experimental demonstration of quantum memory for light
- Mapping photonic entanglement into and out of a quantum memory
- Quantum Storage of Photonic Entanglement in a Crystal
- Universal Approach to Optimal Photon Storage in Atomic Media
- A millisecond quantum memory for scalable quantum networks
- Photon storage in Lambda-type optically dense atomic media. II. Free-space model
- Photon storage in Lambda-type optically dense atomic media. I. Cavity model
- Multimode Memories in Atomic Ensembles
- Analysis of a quantum memory for photons based on controlled reversible inhomogeneous broadening
- Photon storage in Lambda-type optically dense atomic media. III. Effects of inhomogeneous broadening
Cited by in corpus (11)
- Prospective applications of optical quantum memories
- Focus on Quantum Memories
- Tunneling-assisted optical information storage with lattice polariton solitons in cavity-QED arrays
- Photonic quantum memory using an intra-atomic frequency comb
- Storage and retrieval of squeezing in multimode resonant quantum memories
- Storage and conversion of quantum-statistical properties of light in the resonant quantum memory on tripod atomic configuration
- Storing vector-vortex states of light in intra-atomic frequency comb
- Robustness of intra-atomic frequency comb based quantum memory against fluctuating environment
- Retrieval of single photons from solid-state quantum transducers
- Preservation of quantum correlations in femtosecond light pulse train within atomic ensemble
- Real-time ab initio description of the photon-echo mechanisms in extended systems: the case study of bulk GaAs