Abstract
An optical quantum memory is a stationary device that is capable of storing and recreating photonic qubits with a higher fidelity than any classical device. Thus far, these two requirements have been fulfilled for polarization qubits in systems based on cold atoms and cryogenically cooled crystals. Here, we report a roomerature memory capable of storing arbitrary polarization qubits with a signal-to-background ratio higher than 1 and an average fidelity surpassing the classical benchmark for weak laser pulses containing 1.6 photons on average, without taking into account non-unitary operation. Our results demonstrate that a common vapor cell can reach the low background noise levels necessary for polarization qubit storage using single-photon level light, and propels atomic-vapor systems towards a level of functionality akin to other quantum information processing architectures.
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CITATION STYLE
Kupchak, C., Mittiga, T., Jordaan, B., Namazi, M., Nolleke, C., & Figueroa, E. (2015). Roomerature Single-photon level Memory for Polarization States. Scientific Reports, 5. https://doi.org/10.1038/srep07658
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