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Quantitative absorption imaging of optically dense effective two-level systems

Authors :
Veyron, Romain
Mancois, Vincent
Gerent, Jean-Baptiste
Baclet, Guillaume
Bouyer, Philippe
Bernon, Simon
Laboratoire Photonique, Numérique et Nanosciences (LP2N)
Université de Bordeaux (UB)-Institut d'Optique Graduate School (IOGS)-Centre National de la Recherche Scientifique (CNRS)
Publication Year :
2021
Publisher :
arXiv, 2021.

Abstract

Absorption imaging is a commonly adopted method to acquire, with high temporal resolution, spatial information on a partially transparent object. It relies on the interference between a probe beam and the coherent response of the object. In the low saturation regime, it is well described by a Beer Lambert attenuation. In this paper we theoretically derive the absorption of a $\sigma$ polarized laser probe by an ensemble of two-level systems in any saturation regime. We experimentally demonstrate that the absorption cross section in dense $^{87}$Rb cold atom ensembles is reduced, with respect to the single particle response, by a factor proportional to the optical density b of the medium. To explain this reduction, we developed a model that incorporates, in the single particle response, the incoherent electromagnetic background emitted by the surrounding ensemble. We show that it qualitatively reproduces the experimental results. Our calibration factor that has a universal dependence on optical density $b$ for $\sigma$ polarized light : $\alpha$ = 1.17(9) + 0.255(2)b allows to obtain quantitative and absolute, in situ, images of dense quantum systems.<br />Comment: 9 pages, 4 figures

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....85b2f519405e2758c36eb943d2a41456
Full Text :
https://doi.org/10.48550/arxiv.2110.12505