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Photonic Quantum Computing

Ultrahigh and persistent optical depths of caesium in Kagomé-type hollow-core photonic crystal fibres

arXiv
Authors: Krzysztof T. Kaczmarek, Dylan J. Saunders, Michael R. Sprague, W. Steven Kolthammer, Amir Feizpour, Patrick M. Ledingham, Benjamin Brecht, Eilon Poem, Ian A. Walmsley, Joshua Nunn

Year

2015

Paper ID

27202

Status

Preprint

Abstract Read

~2 min

Abstract Words

131

Citations

N/A

Abstract

Alkali-filled hollow-core fibres are a promising medium for investigating light-matter interactions, especially at the single-photon level, due to the tight confinement of light and high optical depths achievable by light-induced atomic desorption. However, until now these large optical depths could only be generated for seconds at most once per day, severely limiting the practicality of the technology. Here we report the generation of highest observed transient $>105$ for up to a minute and highest observed persistent (>2000 for hours) optical depths of alkali vapours in a light-guiding geometry to date, using a caesium-filled Kagomé-type hollow-core photonic crystal fibre. Our results pave the way to light-matter interaction experiments in confined geometries requiring long operation times and large atomic number densities, such as generation of single-photon-level nonlinearities and development of single photon quantum memories.

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  • Alkali-filled hollow-core fibres are a promising medium for investigating light-matter interactions, especially at the single-photon level, due to the tight confinement of...

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