Improving Efficiency of Sympathetic Cooling in Atom-Ion and Atom-Atom Confined Collisions
Vladimir S.Melezhik

TL;DR
This paper introduces a novel method to enhance sympathetic cooling efficiency in atom-ion and atom-atom traps by exploiting confinement-induced resonances (CIRs) to suppress ion micromotion effects, using a quasiclassical-quantum approach.
Contribution
It demonstrates that near CIRs, the destructive effects of ion micromotion on sympathetic cooling can be mitigated, improving cooling efficiency in hybrid traps.
Findings
Sympathetic cooling can be effective near atom-ion CIRs.
Ion micromotion effects are suppressed near CIRs due to fermionization.
The approach is validated with Li-Yb$^+$ and Li-Yb systems.
Abstract
We propose a new way for sympathetic cooling of ions in an electromagnetic Paul trap: it implies the use for this purpose of cold buffer atoms in the region of atom-ion confinement-induced resonance (CIR). The problem is that the unavoidable micromotion of the ion and the long-range nature of its interaction with the environment of colder atoms in a hybrid atomic-ion trap prevent its sympathetic cooling. We show that the destructive effect of ion micromotion on its sympathetic cooling can however be suppressed in the vicinity of the atom-ion CIR. The origin of this is the "fermionization" of the atom-ion wave function near CIR, where the atom-ion pair behaves as a pair of noninteracting identical fermions. This prevents the complete approach of the atom with the ion near resonance and does not enhance the ion micromotion, which interferes with its sympathetic cooling. We investigate the…
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