2013
DOI: 10.1103/physreva.88.023601
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Quantum degenerate mixtures of strontium and rubidium atoms

Abstract: We report on the realization of quantum degenerate gas mixtures of the alkaline-earth element strontium with the alkali element rubidium. A key ingredient of our scheme is sympathetic cooling of Rb by Sr atoms that are continuously laser cooled on a narrow linewidth transition. This versatile technique allows us to produce ultracold gas mixtures with a phase-space density of up to 0.06 for both elements. By further evaporative cooling we create double Bose-Einstein condensates of 87Rb with either 88Sr or 84Sr,… Show more

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Cited by 124 publications
(130 citation statements)
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References 74 publications
(90 reference statements)
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“…This general technique can represent a valuable alternative for associating molecules containing non-magnetic atoms, and in particular for the creation of alkali -alkaline-earth dimers [44][45][46][47]. Such dimers have been attracting great attention as they can allow fascinating quantum simulations, thanks to their permanent magnetic and electric dipole moments [21].…”
Section: Discussionmentioning
confidence: 99%
“…This general technique can represent a valuable alternative for associating molecules containing non-magnetic atoms, and in particular for the creation of alkali -alkaline-earth dimers [44][45][46][47]. Such dimers have been attracting great attention as they can allow fascinating quantum simulations, thanks to their permanent magnetic and electric dipole moments [21].…”
Section: Discussionmentioning
confidence: 99%
“…Although the large majority of work on ultracold molecules has focused on bi-alkali systems, there is burgeoning interest in pairing alkali-metal atoms with divalent atoms such as Yb [40][41][42][43][44][45] or Sr [46]. The heteronuclear 2 Σ molecules formed in these systems have both an electric and a magnetic dipole moment in the ground electronic state.…”
mentioning
confidence: 99%
“…These ultracold molecules have a wealth of applications, such as tests of fundamental physics [27][28][29], realization of novel phase transitions [30][31][32], and the study of ultracold chemistry [33,34]. In addition, the long-range dipole-dipole interactions present between pairs of polar molecules make them useful in the study of dipolar quantum matter [35,36] and ultracold molecules confined in an optical lattice can simulate a variety of condensedmatter systems [37][38][39].Although the large majority of work on ultracold molecules has focused on bi-alkali systems, there is burgeoning interest in pairing alkali-metal atoms with divalent atoms such as Yb [40][41][42][43][44][45] or Sr [46]. The heteronuclear 2 Σ molecules formed in these systems have both an electric and a magnetic dipole moment in the ground electronic state.…”
mentioning
confidence: 99%
“…4e), similar to those implemented for neutral atoms [85,86,87,88]. Another direction is to produce new species of molecules, such as KCs [89], NaCs [90] and open shell molecules such as RbSr [91,92], LiYb [93], and CsYb [94].…”
mentioning
confidence: 99%