Optical pumping and laser slowing of a heavy molecule

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Hauptverfasser: Deng, Shuhua, Yang, Shoukang, Zeng, Zixuan, Yan, Bo
Format: Preprint
Veröffentlicht: 2025
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author Deng, Shuhua
Yang, Shoukang
Zeng, Zixuan
Yan, Bo
author_facet Deng, Shuhua
Yang, Shoukang
Zeng, Zixuan
Yan, Bo
contents Precision measurements of the electron's electric dipole moment (eEDM) are critical for testing fundamental symmetries in particle physics, and heavy polar molecules-such as barium monofluoride (BaF)-have emerged as promising candidates for advancing the sensitivity. However, the achievement of a 3D magneto-optical trap (MOT) required slowing BaF molecules to near-zero velocity by scattering over 10^4 photons per molecule, demanding a quasi-cycling transition with minimal leakage. We present a detailed study of the leakage channels, including higher vibrational and rotational states. By combining microwave remixing with optical pumping of rotational and vibrational dark states, we reduced the total leakage fraction to 10^-5. Using frequency-chirped laser slowing, we slowed a subset of buffer-gas-cooled BaF molecules from approximately 80 m/s to near-zero velocity, which is critical for efficient MOT loading. This work establishes the technical foundation for precision eEDM measurements using laser-cooled heavy molecules.
format Preprint
id arxiv_https___arxiv_org_abs_2512_24167
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optical pumping and laser slowing of a heavy molecule
Deng, Shuhua
Yang, Shoukang
Zeng, Zixuan
Yan, Bo
Atomic Physics
Precision measurements of the electron's electric dipole moment (eEDM) are critical for testing fundamental symmetries in particle physics, and heavy polar molecules-such as barium monofluoride (BaF)-have emerged as promising candidates for advancing the sensitivity. However, the achievement of a 3D magneto-optical trap (MOT) required slowing BaF molecules to near-zero velocity by scattering over 10^4 photons per molecule, demanding a quasi-cycling transition with minimal leakage. We present a detailed study of the leakage channels, including higher vibrational and rotational states. By combining microwave remixing with optical pumping of rotational and vibrational dark states, we reduced the total leakage fraction to 10^-5. Using frequency-chirped laser slowing, we slowed a subset of buffer-gas-cooled BaF molecules from approximately 80 m/s to near-zero velocity, which is critical for efficient MOT loading. This work establishes the technical foundation for precision eEDM measurements using laser-cooled heavy molecules.
title Optical pumping and laser slowing of a heavy molecule
topic Atomic Physics
url https://arxiv.org/abs/2512.24167