Ultracold molecules have experienced increasing attention in recent years. Compared to ultracold atoms, they possess several unique properties that make them perfect candidates for the implementation of new quantum-technological applications in several fields, from quantum simulation to quantum sensing and metrology. In particular, ultracold molecules of two-electron atoms (such as strontium or ytterbium) also inherit the peculiar properties of these atomic species, above all, the possibility to access metastable electronic states via direct excitation on optical clock transitions with ultimate sensitivity and accuracy. We report on the production and coherent manipulation of molecular bound states of two fermionic Yb-173 atoms in different electronic (orbital) states S-1(0) and P-3(0) in the proximity of a scattering resonance involving atoms in different spin and electronic states, called orbital Feshbach resonance. We demonstrate that orbital molecules can be coherently photoassociated starting from a gas of ground-state atoms in a three-dimensional optical lattice by observing several photoassociation and photodissociation cycles. We also show the possibility to coherently control the molecular internal state by using Raman-assisted transfer to swap the nuclear spin of one of the atoms forming the molecule, thus demonstrating a powerful manipulation and detection tool of these molecular bound states. Finally, by exploiting this peculiar detection technique we provide the first information on the lifetime of the molecular states in a many-body setting, paving the way towards future investigations of strongly interacting Fermi gases in a still unexplored regime.

Coherent Manipulation of Orbital Feshbach Molecules of Two-Electron Atoms

Cappellini G;Livi L F;Inguscio M;Catani J;Fallani L
2019

Abstract

Ultracold molecules have experienced increasing attention in recent years. Compared to ultracold atoms, they possess several unique properties that make them perfect candidates for the implementation of new quantum-technological applications in several fields, from quantum simulation to quantum sensing and metrology. In particular, ultracold molecules of two-electron atoms (such as strontium or ytterbium) also inherit the peculiar properties of these atomic species, above all, the possibility to access metastable electronic states via direct excitation on optical clock transitions with ultimate sensitivity and accuracy. We report on the production and coherent manipulation of molecular bound states of two fermionic Yb-173 atoms in different electronic (orbital) states S-1(0) and P-3(0) in the proximity of a scattering resonance involving atoms in different spin and electronic states, called orbital Feshbach resonance. We demonstrate that orbital molecules can be coherently photoassociated starting from a gas of ground-state atoms in a three-dimensional optical lattice by observing several photoassociation and photodissociation cycles. We also show the possibility to coherently control the molecular internal state by using Raman-assisted transfer to swap the nuclear spin of one of the atoms forming the molecule, thus demonstrating a powerful manipulation and detection tool of these molecular bound states. Finally, by exploiting this peculiar detection technique we provide the first information on the lifetime of the molecular states in a many-body setting, paving the way towards future investigations of strongly interacting Fermi gases in a still unexplored regime.
2019
Istituto Nazionale di Ottica - INO
Inglese
9
1
011028
011028
11
http://www.scopus.com/inward/record.url?eid=2-s2.0-85062011856&partnerID=q2rCbXpz
Sì, ma tipo non specificato
Bose-Einstein condensation; spin-exchange interactions; spin-exchange interactions; ultracold; fermions; gasAS
We are very grateful to H. Zhai, P. Zhang, R. Zhang, and Y. Cheng for the numerous inspiring discussions and for suggesting that we perform Raman measurements on orbital molecules. We also acknowledge insightful discussions within the LENS QuantumGases group, in particular, with G. Roati, F. Scazza, and M. Zaccanti. We thank D. Calonico (INRIM) for lending us the clock-laser chip, and TOPTICA Photonics AG for their prompt and high-quality technical assistance. We acknowledge financial support from H2020 European Research Council (ERC Consolidator Grant TOPSIM Grant Agreement No. 682629), European QuantERA ERA-NET Cofund in Quantum Technologies (Project QTFLAG Grant Agreement No. 731473), Ministero dell'Istruzione, dell'Universita e della Ricerca (MIUR Project FARE TOPSPACE R16SPCCRCW, and MIUR PRIN Project No. 2015C5SEJJ) and Istituto Nazionale di Fisica Nucleare (INFN Project FISh)
8
info:eu-repo/semantics/article
262
Cappellini, G; Livi, LORENZO FRANCESCO; Franchi, L; Tusi, D; Orenes, D Benedicto; Inguscio, M; Catani, J; Fallani, L
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/405842
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