Seconds-scale coherence on nuclear spin transitions of ultracold NaRb polar molecules in 3D optical lattices
ORAL
Abstract
Ultracold polar molecules (UPMs) are emerging as a novel and powerful platform for fundamental applications in quantum science. Here, we report characterization of the coherence between nuclear spin levels of ultracold ground-state sodium-rubidium molecules loaded into a 3D optical lattice with a nearly photon scattering limited trapping lifetime of 9(1) seconds. After identifying and compensating the main sources of decoherence, we achieve a maximum nuclear spin coherence time of T2* = 3.3(6) s with two-photon Ramsey spectroscopy. Furthermore, based on the understanding of the main factor limiting the coherence of the two-photon Rabi transition, we obtain a Rabi lineshape with linewidth below 0.8 Hz. The simultaneous realization of long lifetime and coherence time, and ultra-high spectroscopic resolution in our system unveils the great potentials of UPMs in quantum simulation, computation, and metrology.
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Publication: Lin, J., He, J., Jin, M., Chen, G. and Wang, D., 2021. Seconds-scale coherence on nuclear spin transitions of ultracold polar molecules in 3D optical lattices. arXiv preprint arXiv:2111.10013.
Presenters
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Junyu Lin
The Chinese University of Hong Kong
Authors
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Junyu Lin
The Chinese University of Hong Kong
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Junyu He
The Chinese University of Hong Kong
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mucan Jin
The Chinese University of Hong Kong
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Guanghua CHEN
The Chinese University of Hong Kong
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Dajun Wang
The Chinese University of Hong Kong