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Real-Time Observation of Single Atoms Trapped and Interfaced to a Nanofiber Cavity

We demonstrate efficient interfacing of individually trapped single atoms to a nanofiber cavity. The cavity is formed by fabricating photonic crystal structures directly on the nanofiber using femtosecond laser ablation. The single atoms are interfaced to the nanofiber cavity using an optical tweeze...

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Published in:Physical review letters 2019-11, Vol.123 (21), p.213602-213602, Article 213602
Main Authors: Nayak, Kali P, Wang, Jie, Keloth, Jameesh
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description We demonstrate efficient interfacing of individually trapped single atoms to a nanofiber cavity. The cavity is formed by fabricating photonic crystal structures directly on the nanofiber using femtosecond laser ablation. The single atoms are interfaced to the nanofiber cavity using an optical tweezer based side-illumination trapping scheme. We show that the fluorescence of individual single atoms trapped on the nanofiber cavity can be readily observed in real-time through the fiber guided modes. From the photon statistics measured for different cavity decay rates, the effective coupling rate of the atom-cavity interface is estimated to be 34±2  MHz. This yields a cooperativity of 5.4±0.6 (Purcell factor=6.4±0.6) and a cavity enhanced channeling efficiency as high as 85±2% for a cavity mode with a finesse of 140. The trap lifetime is measured to be 52±5  ms. These results may open new possibilities for deterministic preparation of single atom events for quantum photonics applications on an all-fiber platform.
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ispartof Physical review letters, 2019-11, Vol.123 (21), p.213602-213602, Article 213602
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1079-7114
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source American Physical Society:Jisc Collections:APS Read and Publish 2023-2025 (reading list)
subjects Channeling
Crystal structure
Decay rate
Fluorescence
Laser ablation
Nanofibers
Photonic crystals
Real time
title Real-Time Observation of Single Atoms Trapped and Interfaced to a Nanofiber Cavity
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