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    Analyzing the optical pumping on the 5s4dD21−5s8pP11 transition in a magneto-optical trap of Sr atoms

    Naohiro Okamoto, Takatoshi Aoki, and Yoshio Torii*

    • *Contact author: ytorii@phys.c.u-tokyo.ac.jp

    Phys. Rev. A 112, 043118 – Published 22 October, 2025

    DOI: https://doi.org/10.1103/j7s7-b7mj

    Abstract

    We explore the efficacy of optical pumping on the 5s4dD21−5s8pP11 (448nm) transition in a magneto-optical trap (MOT) of Sr atoms. The number of trapped atoms is enhanced by a factor of 12.0(6) relative to the case without repumping light, which is six times as large as that obtained using the pumping transition 5s4dD21−5s6pP11 (717nm). This enhancement is limited by decay pathways that bypass the 5s4dD21 state, namely 5s5pP11→5s4dD13→5s5pP03 and 5s5pP11→5s4dD23→5s5pP23, which account for 8% of the total loss of the trapped atoms. We determine the decay rates for the 5s5pP11→5s4dD13 and 5s5pP11→5s4dD23 transitions to be 66(6)s−1 and 2.4(2)×102s−1, respectively. Furthermore, we experimentally demonstrate, when the trap beam diameter is small, escape of atoms in the 5s4dD21 state, which has a relatively long lifetime of 400µs, becomes a dominant loss mechanism, and that the 448nm pumping light effectively suppresses this escape. Our findings will contribute to improved laser cooling and fluorescence imaging in cold strontium atom platforms, such as quantum computers based on optical tweezer arrays.

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