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Physics > Atomic Physics

arXiv:2111.14653 (physics)
[Submitted on 29 Nov 2021]

Title:Long-lived Bell states in an array of optical clock qubits

Authors:Nathan Schine, Aaron W. Young, William J. Eckner, Michael J. Martin, Adam M. Kaufman
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Abstract:The generation of long-lived entanglement on an optical clock transition is a key requirement to unlocking the promise of quantum metrology. Arrays of neutral atoms constitute a capable quantum platform for accessing such physics, where Rydberg-based interactions may generate entanglement between individually controlled and resolved atoms. To this end, we leverage the programmable state preparation afforded by optical tweezers along with the efficient strong confinement of a 3d optical lattice to prepare an ensemble of strontium atom pairs in their motional ground state. We engineer global single-qubit gates on the optical clock transition and two-qubit entangling gates via adiabatic Rydberg dressing, enabling the generation of Bell states, $|\psi\rangle = \frac{1}{\sqrt{2}}\left(|gg\rangle + i|ee\rangle \right)$, with a fidelity of $\mathcal{F}= 92.8(2.0)$%. For use in quantum metrology, it is furthermore critical that the resulting entanglement be long lived; we find that the coherence of the Bell state has a lifetime of $\tau_{bc} = 4.2(6)$ s via parity correlations and simultaneous comparisons between entangled and unentangled ensembles. Such Bell states can be useful for enhancing metrological stability and bandwidth. Further rearrangement of hundreds of atoms into arbitrary configurations using optical tweezers will enable implementation of many-qubit gates and cluster state generation, as well as explorations of the transverse field Ising model and Hubbard models with entangled or finite-range-interacting tunnellers.
Subjects: Atomic Physics (physics.atom-ph); Quantum Gases (cond-mat.quant-gas); Quantum Physics (quant-ph)
Cite as: arXiv:2111.14653 [physics.atom-ph]
  (or arXiv:2111.14653v1 [physics.atom-ph] for this version)
  https://doi.org/10.48550/arXiv.2111.14653
arXiv-issued DOI via DataCite
Journal reference: Nature Physics, 2022
Related DOI: https://doi.org/10.1038/s41567-022-01678-w
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From: Nathan Schine [view email]
[v1] Mon, 29 Nov 2021 16:10:30 UTC (2,756 KB)
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