A New Mechanism for Sympathetic Cooling of Atoms and Ions in Atomic and Ion-Atomic Traps
V.S. Melezhik

TL;DR
This paper proposes a novel method to enhance sympathetic cooling of ions in hybrid traps by utilizing atom-ion confinement-induced resonances (CIRs), effectively suppressing micromotion effects and improving cooling efficiency.
Contribution
It introduces the use of atom-ion CIRs to mitigate micromotion effects, enabling more effective sympathetic cooling of ions in hybrid traps.
Findings
Sympathetic cooling is feasible near atom-ion CIRs.
Using atomic CIRs can improve cooling efficiency.
Resonant blocking reduces ion heating due to micromotion.
Abstract
Sympathetic cooling of a Fermi gas with a buffer gas of bosonic atoms is an efficient way to achieve quantum degeneracy in Fermi systems. However, all attempts to use this method for cooling ions until recently were ineffective because of the unremovable ion `"micromotion" in electromagnetic Paul traps, which prevents the realization of a number of hot projects with cold atom-ion systems. In this regard, we propose a new efficient method for sympathetic cooling of ions: the use for this purpose of cold buffer atoms in the region of atom-ion confinement-induced resonances (CIRs) [V.S. Melezhik, Phys. Rev. A103, 53109 (2021)]. We show that the destructive effect of "micromotion" on its sympathetic cooling can, however, be suppressed in the vicinity of the atom-ion CIR. Here, the resonant blocking of a close collision of an atom with an ion also resists its heating due to "micromotion". We…
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