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86 reviewsThis is a PDF file of a peer-reviewed paper that has been accepted for publication.
Neng-Chun Chiu1,∗, Elias C. Trapp1,∗, Jinen Guo1,∗, Mohamed H. Abobeih1,∗, Luke M. Stewart1,∗,3 Simon Hollerith1,∗,†, Pavel L. Stroganov1, Marcin Kalinowski1, Alexandra A. Geim1, Simon J. Evered1,4 Sophie H. Li1, Xingjian Lyu1, Lisa M. Peters1,3, Dolev Bluvstein1, Tout T. Wang1, Markus Greiner1,5c2, and Mikhail D. Lukin1,†Vladan Vuleti´6 1Department of Physics, Harvard University, Cambridge, MA 02138, USA7 2Department of Physics and Research Laboratory of Electronics, Massachusetts Institute of Tech8 nology, Cambridge, MA 02139, USA9 3Department of Physics, ETH Zurich, 8093 Zurich, Switzerland10 ∗ These authors contributed equally to this work.11 †Corresponding Author; E-mail: [email protected], [email protected] Neutral atoms are a promising platform for quantum science, enabling advances in areas14ranging from quantum simulations1–3 and computation4–10 to metrology, atomic clocks11–1315 and quantum networking14–16. While atom losses typically limit these systems to a pulsed16 mode, continuous operation17–22could significantly enhance cycle rates, remove bottle17 necks in metrology23, and enable deep-circuit quantum evolution through quantum error18 correction24, 25. Here we demonstrate an experimental architecture for high-rate reloading19 and continuous operation of a large-scale atom array system while realizing coherent stor20 age and manipulation of quantum information. Our approach utilizes a series of two optical