Narrow-line Laser Cooling by Adiabatic Transfer
Abstract
We propose and demonstrate a novel laser cooling mechanism applicable to particles with narrow-linewidth optical transitions. By sweeping the frequency of counter-propagating laser beams in a sawtooth manner, we cause adiabatic transfer back and forth between the ground state and a long-lived optically excited state. The time-ordering of these adiabatic transfers is determined by Doppler shifts, which ensures that the associated photon recoils are in the opposite direction to the particle's motion. This ultimately leads to a robust cooling mechanism capable of exerting large forces via a weak transition and with reduced reliance on spontaneous emission. We present a simple intuitive model for the resulting frictional force, and directly demonstrate its efficacy for increasing the total phase-space density of an atomic ensemble. We rely on both simulation and experimental studies using the 7.5~kHz linewidth S to P transition in Sr. The reduced reliance on spontaneous emission may allow this adiabatic sweep method to be a useful tool for cooling particles that lack closed cycling transitions, such as molecules.
Cite
@article{arxiv.1707.01944,
title = {Narrow-line Laser Cooling by Adiabatic Transfer},
author = {Matthew A. Norcia and Julia R. K. Cline and John P. Bartolotta and Murray J. Holland and James K. Thompson},
journal= {arXiv preprint arXiv:1707.01944},
year = {2018}
}
Comments
5 pages, 4 figures