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Showing 1–3 of 3 results for author: Absil, L

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  1. arXiv:2512.13521  [pdf, ps, other

    cond-mat.quant-gas physics.atom-ph

    Optically trapped Feshbach molecules of fermionic $^{161}$Dy and $^{40}$K: Role of light-induced and collisional losses

    Authors: Alberto Canali, Chun-Kit Wong, Luc Absil, Zhu-Xiong Ye, Marian Kreyer, Emil Kirilov, Rudolf Grimm

    Abstract: We study the decay of a dense, ultracold sample of weakly bound DyK dimers stored in an optical dipole trap. Our bosonic dimers are composed of the fermionic isotopes $^{161}$Dy and $^{40}$K, which is of particular interest for experiments related to pairing and superfluidity in fermionic systems with mass imbalance. We have realized dipole traps with near-infrared laser light in four different wa… ▽ More

    Submitted 13 May, 2026; v1 submitted 15 December, 2025; originally announced December 2025.

    Comments: 12 pages, 5 figures

    Journal ref: Phys. Rev. A 113, 053306 (2026)

  2. arXiv:2310.14717  [pdf, other

    physics.atom-ph

    Quectonewton local force sensor

    Authors: Yann Balland, Luc Absil, Franck Pereira dos Santos

    Abstract: We report on the realization of a quantum sensor based on trapped atom interferometry in an optical lattice for the measurement of atom-surface interactions, with sub-micrometer-level control of the mean atom-surface separation distance. The force sensor reaches a short-term sensitivity of 3.4 x 10 --28 N at 1 s and a long-term stability of 4 qN (4 x 10 --30 N). We perform force measurements in th… ▽ More

    Submitted 23 October, 2023; originally announced October 2023.

  3. Long-range temperature-controlled transport of ultra-cold atoms with an accelerated lattice

    Authors: Luc Absil, Yann Balland, Franck Pereira dos Santos

    Abstract: We report our method for transporting ultracold atoms over macroscopic distances and trapping them back in a vertical mixed trap, consisting of the superposition of a vertical lattice and a transverse confinement beam. The transport is performed with Bloch oscillations allowing us to move up to 25% of a sub-micro-Kelvin atomic cloud on a distance of the order of 30cm, without excessive heating and… ▽ More

    Submitted 13 March, 2023; originally announced March 2023.