Adiabatic association of ultracold molecules via magnetic field tunable interactions
Krzysztof Goral, Thorsten Koehler, Simon A. Gardiner, Eite Tiesinga,, Paul S. Julienne

TL;DR
This paper investigates the process of creating ultracold molecules from a Bose-Einstein condensate of 87Rb atoms by sweeping a magnetic field across a Feshbach resonance, analyzing the efficiency and universality of this adiabatic association.
Contribution
It introduces a minimal two-body Hamiltonian for Feshbach resonances and compares various theoretical models to explain molecule formation efficiency.
Findings
Molecular conversion efficiency is largely insensitive to microscopic collision details.
Linear magnetic field ramps produce universal conversion efficiencies.
The Landau-Zener coefficient primarily determines the association efficiency.
Abstract
We consider in detail the situation of applying a time dependent external magnetic field to a 87Rb atomic Bose-Einstein condensate held in a harmonic trap, in order to adiabatically sweep the interatomic interactions across a Feshbach resonance to produce diatomic molecules. To this end, we introduce a minimal two-body Hamiltonian depending on just five measurable parameters of a Feshbach resonance, which accurately determines all low energy binary scattering observables, in particular, the molecular conversion efficiency of just two atoms. Based on this description of the microscopic collision phenomena, we use the many-body theory of T. Koehler and K. Burnett [Phys. Rev. A 65, 033601 (2002)] to study the efficiency of the association of molecules in a 87Rb Bose-Einstein condensate during a linear passage of the magnetic field strength across the 100 mT Feshbach resonance. We explore…
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