Many-body effects on adiabatic passage through Feshbach resonances
I. Tikhonenkov, E. Pazy, Y. B. Band, M. Fleischhauer, and A. Vardi

TL;DR
This paper investigates how many-body effects influence the efficiency of adiabatic passage through Feshbach resonances, revealing a transition from exponential to power-law behavior due to dynamical instabilities.
Contribution
It introduces a mean-field theory that accounts for quantum fluctuations and demonstrates how many-body dynamics alter the sweep rate dependence in Feshbach resonance conversions.
Findings
Power-law dependence of remnant fraction on sweep rate due to instability
Different power laws depending on initial molecular fraction
Confirmation of results with exact Fock-space calculations
Abstract
We theoretically study the dynamics of an adiabatic sweep through a Feshbach resonance, thereby converting a degenerate quantum gas of fermionic atoms into a degenerate quantum gas of bosonic dimers. Our analysis relies on a zero temperature mean-field theory which accurately accounts for initial molecular quantum fluctuations, triggering the association process. The structure of the resulting semiclassical phase space is investigated, highlighting the dynamical instability of the system towards association, for sufficiently small detuning from resonance. It is shown that this instability significantly modifies the finite-rate efficiency of the sweep, transforming the single-pair exponential Landau-Zener behavior of the remnant fraction of atoms Gamma on sweep rate alpha, into a power-law dependence as the number of atoms increases. The obtained nonadiabaticity is determined from the…
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