Optimization and readout-noise analysis of a warm vapor EIT memory on the Cs D1 line
arXiv:2203.06151 · doi:10.1103/PhysRevA.107.042607
Abstract
Quantum memories promise to enable global quantum repeater networks. For field applications, alkali metal vapors constitute an exceptional storage platform, as neither cryogenics, nor strong magnetic fields are required. We demonstrate a technologically simple, in principle satellite-suited quantum memory based on electromagnetically induced transparency on the cesium D1 line, and focus on the trade-off between end-to-end efficiency and signal-to-noise ratio, both being key parameters in applications. For coherent pulses containing one photon on average, we achieve storage and retrieval with end-to-end efficiencies of , which correspond to internal memory efficiencies of . Simultaneously, we achieve a noise level corresponding to signal photons. This noise is dominated by spontaneous Raman scattering, with contributions from fluorescence. Four wave mixing noise is negligible, allowing for further minimization of the total noise level.
This version contains the changes to the manuscript after the third review process
References in corpus (17)
- The Quantum Internet
- Universal Approach to Optimal Photon Storage in Atomic Media
- Photon storage in Lambda-type optically dense atomic media. II. Free-space model
- 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
- One-hour coherent optical storage in an atomic frequency comb memory
- A solid state spin-wave quantum memory for time-bin qubits
- Experimental realization of a multiplexed quantum memory with 225 individually accessible memory cells
- Coherent spin control at the quantum level in an ensemble-based optical memory
- Storage of photonic time-bin qubits for up to 20 ms in a rare-earth doped crystal
- Interfacing GHz-bandwidth heralded single photons with a room-temperature Raman quantum memory
- Photon storage in Lambda-type optically dense atomic media. III. Effects of inhomogeneous broadening
- Photon storage in Lambda-type optically dense atomic media. IV. Optimal control using gradient ascent
- Single-Photon Storage in a Ground-State Vapor Cell Quantum Memory
- Simulating quantum repeater strategies for multiple satellites
- Room-temperature single-photon source with near-millisecond built-in memory
- Bright multiplexed source of indistinguishable single photons with tunable GHz-bandwidth at room temperature
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