Rotational Spectroscopy and Magic 3D Optical Lattices for Ultracold <sup>6</sup>Li<sup>40</sup>K Molecules
POSTER
Abstract
We report highly-resolved rotational spectroscopy of ultracold 6Li40K molecules, search for the magic condition via b3Π transition, and the extension of molecule coherence time in the magic 3D optical lattices.
We first present rotational spectroscopy of the J=1 hyperfine structure at 215.5 G. By analyzing transition frequencies to excited states, we extract hyperfine interaction constants. One stretched transition is further narrowed down to Hz-level resolution, and the coherence time in a 1070nm optical dipole trap is measured, with the coherence timescale of approximately 10 microseconds.
To extend the coherence time, frequency-dependent polarizability calculations for the ground and first rotational excited states of 6Li40K are conducted. Via spin-orbital coupling between a1Σ and b3Π, we found the transition of |b3Π, v=0, J=1> from ground state molecules at 314.2305 THz. We further experimentally calibrated the feature in the polarizability spectra, particularly in the vicinity of a broad and far-detuned magic wavelength where the differential light shift remains negligible across the trap. Magic points occur at -8.9 GHz (90 deg laser polarization) and +6.8 GHz (0 deg laser polarization) away from the nearest transition. At the magic points, polarizability change within 1kHz by varying laser intensity from 0 to 9 kW/cm2. We further built up a 3D magic optical lattice. The fine tuning of the coherence optimization via magic frequency is ongoing.
We first present rotational spectroscopy of the J=1 hyperfine structure at 215.5 G. By analyzing transition frequencies to excited states, we extract hyperfine interaction constants. One stretched transition is further narrowed down to Hz-level resolution, and the coherence time in a 1070nm optical dipole trap is measured, with the coherence timescale of approximately 10 microseconds.
To extend the coherence time, frequency-dependent polarizability calculations for the ground and first rotational excited states of 6Li40K are conducted. Via spin-orbital coupling between a1Σ and b3Π, we found the transition of |b3Π, v=0, J=1> from ground state molecules at 314.2305 THz. We further experimentally calibrated the feature in the polarizability spectra, particularly in the vicinity of a broad and far-detuned magic wavelength where the differential light shift remains negligible across the trap. Magic points occur at -8.9 GHz (90 deg laser polarization) and +6.8 GHz (0 deg laser polarization) away from the nearest transition. At the magic points, polarizability change within 1kHz by varying laser intensity from 0 to 9 kW/cm2. We further built up a 3D magic optical lattice. The fine tuning of the coherence optimization via magic frequency is ongoing.
Presenters
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Xiaoyu Nie
Center for Quantum Technologies, Natl Univ of Singapore
Authors
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Xiaoyu Nie
Center for Quantum Technologies, Natl Univ of Singapore
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Anbang Yang
Center for Quantum Technologies, Natl Univ of Singapore
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Victor Andre Avalos Pinillos
Center for Quantum Technologies, Natl Univ of Singapore
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Hao Lin Yu
Center for Quantum Technologies, Natl Univ of Singapore
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Yiming Liu
Center for Quantum Technologies, Natl Univ of Singapore
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Canming He
Center for Quantum Technologies, Natl Univ of Singapore
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Jacek Klos
Temple University, University of Maryland College Park
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Svetlana Kotochigova
Temple University
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Kai Dieckmann
Center for Quantum Technologies, Natl Univ of Singapore