A nested multipass cell delays photons up to 687 ns with 95.4% efficiency and 99.6% entangled-state fidelity, yielding a time-bandwidth product of 3.87x10^7.
Broadband Quantum Memory in Atomic Ensembles
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abstract
Broadband quantum memory is critical to enabling the operation of emerging photonic quantum technology at high speeds. Here we review a central challenge to achieving broadband quantum memory in atomic ensembles -- what we call the 'linewidth-bandwidth mismatch' problem -- and the relative merits of various memory protocols and hardware used for accomplishing this task. We also review the theory underlying atomic ensemble quantum memory and its extensions to optimizing memory efficiency and characterizing memory sensitivity. Finally, we examine the state-of-the-art performance of broadband atomic ensemble quantum memories with respect to three key metrics: efficiency, memory lifetime, and noise.
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Highly Efficient and Broadband Optical Delay Line towards a Quantum Memory
A nested multipass cell delays photons up to 687 ns with 95.4% efficiency and 99.6% entangled-state fidelity, yielding a time-bandwidth product of 3.87x10^7.