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arXiv · 2302.10855

Dark-state enhanced loading of an optical tweezer array

Abstract

Neutral atoms and molecules trapped in optical tweezers have become a prevalent resource for quantum simulation, computation, and metrology. However, the maximum achievable system sizes of such arrays are often limited by the stochastic nature of loading into optical tweezers, with a typical loading probability of only 50%. Here we present a species-agnostic method for dark-state enhanced loading (DSEL) based on real-time feedback, long-lived shelving states, and iterated array reloading. We demonstrate this technique with a 95-tweezer array of $^{88}$Sr atoms, achieving a maximum loading probability of 84.02(4)% and a maximum array size of 91 atoms in one dimension. Our protocol is complementary to, and compatible with, existing schemes for enhanced loading based on direct control over light-assisted collisions, and we predict it can enable close-to-unity filling for arrays of atoms or molecules.

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Adam L. Shaw, Pascal Scholl, Ran Finklestein, Ivaylo S. Madjarov, Brandon Grinkemeyer, Manuel Endres. 2023-02-21. Dark-state enhanced loading of an optical tweezer array. https://doi.org/10.1103/physrevlett.130.193402

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