Entanglement of neutral-atom qubits with long ground-Rydberg coherence times

Abstract

We report results of a ground-state entanglement protocol for a pair of Cs atoms separated by 6~μm, combining the Rydberg blockade mechanism with a two-photon Raman transitions to prepare the +=( 10+ 01)/2 Bell state with a loss-corrected fidelity of 0.81(5), equal to the best demonstrated fidelity for atoms trapped in optical tweezers but without the requirement for dynamically adjustable interatomic spacing. Qubit state coherence is also critical for quantum information applications, and we characterise both ground-state and ground-Rydberg dephasing rates using Ramsey spectroscopy. We demonstrate transverse dephasing times T2*=10(1)~ms and T2'=0.14(1)~s for the qubit levels and achieve long ground-Rydberg coherence times of T2*=17(2)~μs as required for implementing high-fidelity multi-qubit gate sequences where a control atom remains in the Rydberg state while applying local operations on neighbouring target qubits.

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