Please use this identifier to cite or link to this item: https://doi.org/10.1103/PhysRevA.91.053842
Title: Autler-Townes splitting via frequency up-conversion at ultralow-power levels in cold 87 Rb atoms using an optical nanofiber
Authors: Kumar, R 
Gokhroo, V
Deasy, K
Chormaic, S.N
Keywords: Atoms
Frequency converters
Infrared devices
Light
Nanofibers
Optical fibers
Photons
Two photon processes
Autler-townes splitting
Detection tools
Direct measurement
Evanescent light
Frequency up conversion
Near Infrared
Rabi frequency
Ultra-low power
Optical frequency conversion
Issue Date: 2015
Publisher: American Physical Society
Citation: Kumar, R, Gokhroo, V, Deasy, K, Chormaic, S.N (2015). Autler-Townes splitting via frequency up-conversion at ultralow-power levels in cold 87 Rb atoms using an optical nanofiber. Physical Review A - Atomic, Molecular, and Optical Physics 91 (5) : 53842. ScholarBank@NUS Repository. https://doi.org/10.1103/PhysRevA.91.053842
Rights: Attribution 4.0 International
Abstract: The tight confinement of the evanescent light field around the waist of an optical nanofiber makes it a suitable tool for studying nonlinear optics in atomic media. Here, we use an optical nanofiber embedded in a cloud of laser-cooled 87 Rb for near-infrared frequency up-conversion via a resonant two-photon process. Sub-nW powers of the two-photon radiation, at 780 and 776 nm, copropagate through the optical nanofiber and the generation of 420 nm photons is observed. A measurement of the Autler-Townes splitting provides a direct measurement of the Rabi frequency of the 780 nm transition. Through this method, dephasings of the system can be studied. In this work, the optical nanofiber is used as an excitation and detection tool simultaneously, and it highlights some of the advantages of using fully fibered systems for nonlinear optics with atoms. © 2015, American Physical Society. All rights reserved.
Source Title: Physical Review A - Atomic, Molecular, and Optical Physics
URI: https://scholarbank.nus.edu.sg/handle/10635/179662
ISSN: 1050-2947
DOI: 10.1103/PhysRevA.91.053842
Rights: Attribution 4.0 International
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