DocumentCode :
1082496
Title :
Planar Hollow-Core Waveguide Technology for Atomic Spectroscopy and Quantum Interference in Alkali Vapors
Author :
Wu, Bin ; Hulbert, John F. ; Hawkins, Aaron R. ; Schmidt, Holger
Author_Institution :
Sch. of Eng., Univ. of California, Santa Cruz, CA
Volume :
26
Issue :
23
fYear :
2008
Firstpage :
3727
Lastpage :
3733
Abstract :
Atomic vapors of alkali metals are widely used to slow and stop light in tabletop experiments. In order to take advantage of the underlying quantum interference effects in future commercial devices, highly reactive alkali atoms must be incorporated into small volumes with integrated optical access. With integration in mind, we describe the development of a hollow-core waveguide technology based on the combination of vapor-filled hollow waveguides and conventional solid-core waveguides on a silicon chip. We discuss the underlying principles of the waveguide design, the development of different approaches to building on-chip vapor cells, the demonstration of linear and nonlinear rubidium spectroscopy on a chip, and the prospects for quantum interference effects such as slow light and giant Kerr nonlinearities using this approach. Ultrasmall active vapor volumes on the order of 100 picoliters with simultaneously high optical density in excess of two illustrate the potential of planar hollow-core waveguides for linear and nonlinear optical spectroscopy of atoms confined on a chip.
Keywords :
elemental semiconductors; optical Kerr effect; optical design techniques; optical planar waveguides; quantum interference phenomena; rubidium; silicon; slow light; spectrochemical analysis; Rb; Si; alkali metal atomic vapor; atomic spectroscopy; giant Kerr nonlinearity; integrated optical access; linear rubidium optical spectroscopy; nonlinear rubidium optical spectroscopy; on-chip vapor cell; optical density; planar hollow-core waveguide technology; quantum interference effect; silicon chip integration; slow light phenomena; ultrasmall active vapor volume; waveguide design principle; Atom optics; Hollow waveguides; Integrated optics; Interference; Nonlinear optics; Optical devices; Optical waveguides; Planar waveguides; Silicon; Spectroscopy; ARROW waveguides; electromagnetically induced transparency (EIT); integrated optics; nonlinear optics; quantum interference;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2008.2005426
Filename :
4760189
Link To Document :
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