Field-linked resonances of polar molecules
Chen, Xing-Yan and Schindewolf, Andreas and Eppelt, Sebastian and Bause, Roman and Duda, Marcel and Biswas, Shrestha and Karman, Tijs and Hilker, Timon and Bloch, Immanuel and Luo, Xin-Yu (2023) Field-linked resonances of polar molecules. Nature, 614 (7946). pp. 59-63. ISSN 0028-0836 (https://doi.org/10.1038/s41586-022-05651-8)
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Abstract
Scattering resonances are an essential tool for controlling the interactions of ultracold atoms and molecules. However, conventional Feshbach scattering resonances, which have been extensively studied in various platforms, are not expected to exist in most ultracold polar molecules because of the fast loss that occurs when two molecules approach at a close distance. Here we demonstrate a new type of scattering resonance that is universal for a wide range of polar molecules. The so-called field-linked resonances occur in the scattering of microwave-dressed molecules because of stable macroscopic tetramer states in the intermolecular potential. We identify two resonances between ultracold ground-state sodium–potassium molecules and use the microwave frequencies and polarizations to tune the inelastic collision rate by three orders of magnitude, from the unitary limit to well below the universal regime. The field-linked resonance provides a tuning knob to independently control the elastic contact interaction and the dipole–dipole interaction, which we observe as a modification in the thermalization rate. Our result provides a general strategy for resonant scattering between ultracold polar molecules, which paves the way for realizing dipolar superfluids and molecular supersolids16, as well as assembling ultracold polyatomic molecules.
ORCID iDs
Chen, Xing-Yan, Schindewolf, Andreas, Eppelt, Sebastian, Bause, Roman, Duda, Marcel, Biswas, Shrestha, Karman, Tijs, Hilker, Timon ORCID: https://orcid.org/0000-0002-1012-5750, Bloch, Immanuel and Luo, Xin-Yu;-
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Item type: Article ID code: 91909 Dates: DateEvent2 February 2023Published1 February 2023Published Online13 December 2022AcceptedSubjects: Science > Physics > Atomic physics. Constitution and properties of matter Department: Faculty of Science > Physics Depositing user: Pure Administrator Date deposited: 29 Jan 2025 08:26 Last modified: 29 Jan 2025 08:26 URI: https://strathprints.strath.ac.uk/id/eprint/91909