Atomic vapor as a source of tunable, non-Gaussian self-reconstructing optical modes
Abstract
In this manuscript, we demonstrate the ability of nonlinear light-atom interactions to produce tunably non-Gaussian, partially self-healing optical modes. Gaussian spatial-mode light tuned near to the atomic resonances in hot rubidium vapor is shown to result in non-Gaussian output mode structures that may be controlled by varying either the input beam power or the temperature of the atomic vapor. We show that the output modes exhibit a degree of self-reconstruction after encountering an obstruction in the beam path. The resultant modes are similar to truncated Bessel-Gauss modes that exhibit the ability to self-reconstruct earlier upon propagation than Gaussian modes. The ability to generate tunable, self-reconstructing beams has potential applications to a variety of imaging and communication scenarios.
Keywords
Cite
@article{arxiv.1701.01715,
title = {Atomic vapor as a source of tunable, non-Gaussian self-reconstructing optical modes},
author = {Jon D. Swaim and Kaitlyn N. David and Erin M. Knutson and Christian Rios and Onur Danaci and Ryan T. Glasser},
journal= {arXiv preprint arXiv:1701.01715},
year = {2017}
}
Comments
8 pages, 4 figures