Coherence in a cold atom photon transistor
arXiv:1505.02667 · doi:10.1103/PhysRevA.92.043828
Abstract
Recent experiments have realized an all-optical photon transistor using a cold atomic gas. This approach relies on electromagnetically induced transparency (EIT) in conjunction with the strong interaction among atoms excited to high-lying Rydberg states. The transistor is gated via a so-called Rydberg spinwave, in which a single Rydberg excitation is coherently shared by the whole ensemble. In its absence the incoming photon passes through the atomic ensemble by virtue of EIT while in its presence the photon is scattered rendering the atomic gas opaque. An important current challenge is to preserve the coherence of the Rydberg spinwave during the operation of the transistor, which would enable for example its coherent optical read-out and its further processing in quantum circuits. With a combined field theoretical and quantum jump approach and by employing a simple model description we investigate systematically and comprehensively how the coherence of the Rydberg spinwave is affected by photon scattering. With large-scale numerical calculations we show how coherence becomes increasingly protected with growing interatomic interaction strength. For the strongly interacting limit we derive analytical expressions for the spinwave fidelity as a function of the optical depth and bandwidth of the incoming photon.
7 pages. 4 figures
References in corpus (11)
- Single Photon Transistor Mediated by Inter-State Rydberg Interaction
- Single-Photon Transistor Using a Förster Resonance
- Photon storage in Lambda-type optically dense atomic media. II. Free-space model
- Quantum critical behavior in strongly interacting Rydberg gases
- Collective generation of quantum states of light by entangled atoms
- Quantum information processing with single photons and atomic ensembles in microwave coplanar waveguide resonators
- Two-photon dynamics in coherent Rydberg atomic ensemble
- Dissipative Many-body Quantum Optics in Rydberg Media
- Superradiance Lattice
- Electromagnetically induced transparency in an entangled medium
- Heisenberg Limit Superradiant Superresolving Metrology
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- Self-induced transparency in warm and strongly interacting Rydberg gases
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- Electromagnetically induced transparency of ultralong-range Rydberg molecules
- Quantum theory of Kerr nonlinearity with Rydberg slow light polaritons
- Photon Subtraction by Many-Body Decoherence
- Interacting photon pulses in Rydberg medium
- Switchable dynamic Rydberg-dressed excitation via a cascaded double electromagnetically induced transparency
- Metastable decoherence-free subspaces and electromagnetically induced transparency in interacting many-body systems
- Quantum Reflections of Nonlocal Optical Solitons in a Cold Rydberg Atomic Gas
- Two photon conditional phase gate based on Rydberg slow light polaritons
- Few-body quantum physics with strongly interacting Rydberg polaritons
- Strong zero-field Förster resonances in K-Rb Rydberg systems
- Efficiently verifiable quantum advantage on near-term analog quantum simulators
- Facilitation Induced Transparency and Single Photon Switch with Dual-Channel Rydberg Interactions
- Coherence enhancement of Rydberg polaritons
- Optimizing decoherence in the generation of optical Schrödinger cat states