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    Single-photon loading of polar molecules into an optical trap

    Bart J. Schellenberg1,2, Eifion H. Prinsen1,2, Janko Nauta3, Lukáš F. Pašteka1,2,4, Anastasia Borschevsky1,2, and Steven Hoekstra1,2,*

    • *Contact author: s.hoekstra@rug.nl

    Phys. Rev. A 113, 013113 – Published 12 January, 2026

    DOI: https://doi.org/10.1103/mybg-d2ym

    Abstract

    We propose a scheme to transfer molecules from a slow beam into an optical trap using only a single-photon absorption and emission cycle. The efficiency of such a scheme is numerically explored for BaF using realistic experimental parameters. The technique makes use of the state-dependent potential in an external electric field to trap molecules from an initial velocity of order 10m/s. A rapid optical transition at the point where the molecules come to a standstill in the electric field potential irreversibly transfers them into a ∼7mK optical lattice trap. For a pulsed Stark decelerated beam, we estimated the per-shot efficiency to be ∼0.52% or up to ∼104molecules, with a potential factor of 2 improvement when the fields are synchronously modulated with the arriving velocity components. The irreversibility of the scheme allows for larger numbers to be built up over time. Since this scheme does not rely on a closed cycling transition for laser cooling, it broadens the range of molecules that can be used for research on cold molecular chemistry, quantum information, and fundamental interactions in optical traps.

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