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arXiv · 1801.04663

Atom-dimer scattering in heteronuclear mixture with finite intra-species scattering length

Abstract

We study the three-body problem of two ultracold identical bosonic atoms (denoted by $B$) and one extra atom (denoted by $X$), where the scattering length $a_{BX}$ between each bosonic atom and atom $X$ is resonantly large and positive. We calculate the scattering length $a_{\rm ad}$ between one bosonic atom and the shallow dimer formed by the other bosonic atom and atom $X$, and investigate the effect induced by the interaction between the two bosonic atoms. We find that even if this interaction is weak (i.e., the corresponding scattering length $a_{BB}$ is of the same order of the van der Waals length $r_{\rm vdW}$ or even smaller), it can still induce a significant effect for the atom--dimer scattering length $a_{\rm ad}$. Explicitly, an atom--dimer scattering resonance can always occur when the value of $a_{BB}$ varies in the region with $|a_{BB}|\lesssim r_{\rm vdW}$. As a result, both the sign and the absolute value of $a_{\rm ad}$, as well as the behavior of the $a_{\rm ad}$-$a_{BX}$ function, depends sensitively on the exact value of $a_{BB}$. Our results show that, for a good quantitative theory, the intra-species interaction is required to be taken into account for this heteronuclear system, even if this interaction is weak.

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BibTeXRIS

Chao Gao, Peng Zhang. 2018-01-15. Atom-dimer scattering in heteronuclear mixture with finite intra-species scattering length. https://doi.org/10.1103/physreva.97.042701

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