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Probing dipolar interactions between Rydberg atoms and ultracold polar molecules
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abstract
We probe resonant dipolar interactions between ultracold $^{40}$K$^{87}$Rb molecules and Rydberg $^{87}$Rb atoms in an optically trapped ensemble. Through state-selective ionization detection of the KRb molecules, we observe resonant energy transfer at 2.227 GHz from Rydberg atoms to molecules under a tunable external electric field. We measure a broadening up to 3.5 MHz, for the Rb Rydberg excitation spectrum, which matches a Monte Carlo simulation that describes a Rydberg atom and neighboring molecules evolving under a dipole-dipole interacting Hamiltonian. The demonstrated interspecies dipolar interaction is a key ingredient for hybrid Rydberg-polar molecule systems, where the advantages of each system can be leveraged and combined.
Forward citations
Cited by 2 Pith papers
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Data-insensitive cooling of polar molecules with Rydberg atoms
Engineered state-insensitive Rydberg interactions make cold atoms swap away the thermal vibrations of polar molecules, cooling their motion while preserving the molecular qubit, with useful swap ranges near one to two...
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Experiments with interacting ultracold polar molecules
A book chapter reviews the experimental milestones in ultracold polar molecules: from collisional control to quantum degeneracy and molecular entanglement.
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