DocumentCode
1970361
Title
Photon barrier and photon tunneling in optical waveguide structure
Author
Li, Wei ; Sadeghi, S.M. ; Chen, Gen-Xiang
Author_Institution
Wisconsin-Platteville Univ., Platteville
fYear
2007
fDate
17-20 May 2007
Firstpage
6
Lastpage
11
Abstract
Based on the well-known electron coherent tunneling phenomenon, a photonic tunneling Alter fabricated on an optical waveguide is proposed. The Bragg grating structure is applied as the photonic barrier. Two identical photonic barriers form a coherent resonance cavity or photon confinement quantum well so that at a specific wavelength in the forbidden band of the barrier, the photon can be tunneling through the waveguide with 100% transmission and very narrow bandwidth. Additionally, to facilitate the engineering design of this kind of photonic tunneling filter, a phase-shifted asymmetric-barrier structure is implemented. It is demonstrated that in this asymmetric-barrier structure, the tunneling wavelength is exactly the same as the Bragg wavelength of the grating, which is at the center of the barrier stop band. Some key parameters such as cavity/well and barrier lengths are investigated in order to control the filter bandwidth. Therefore the photon filter proposed should be easily designed for a specific wavelength and bandwidth and will have great applications in wavelength division multiplexing optic communication system and optical sensing. Finally it is pointed out that this tunneling filter is clearly related to the distributed-Bragg-grating-reflection laser diode.
Keywords
Bragg gratings; optical filters; optical waveguides; tunnelling; Bragg grating structure; Bragg wavelength; coherent resonance cavity; electron coherent tunneling; forbidden band; optic communication system; optical sensing; optical waveguide structure; phase-shifted asymmetric-barrier structure; photon confinement quantum well; photonic barrier; photonic tunneling filter; tunneling wavelength; wavelength division multiplexing; Bandwidth; Bragg gratings; Design engineering; Electron optics; Optical filters; Optical sensors; Optical waveguides; Potential well; Resonance; Tunneling; Bragg grating; Photon barrier; optical filter; photon tunneling;
fLanguage
English
Publisher
ieee
Conference_Titel
Electro/Information Technology, 2007 IEEE International Conference on
Conference_Location
Chicago, IL
Print_ISBN
978-1-4244-0941-9
Electronic_ISBN
978-1-4244-0941-9
Type
conf
DOI
10.1109/EIT.2007.4374448
Filename
4374448
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