DocumentCode :
882302
Title :
Programmable spectral design using a simple binary Bragg-diffractive structure
Author :
Levner, Daniel ; Fay, Martin F. ; Xu, J.M.
Author_Institution :
Dept. of Electr. Eng., Stanford Univ., CA, USA
Volume :
42
Issue :
4
fYear :
2006
fDate :
4/1/2006 12:00:00 AM
Firstpage :
410
Lastpage :
417
Abstract :
We present the binary supergrating (BSG), a digital approach to spectral engineering that permits the near-arbitrary control of optical amplitude and phase in a wavelength-dependent manner. The BSG is a guided-wave technology that consists of an aperiodic sequence of binary elements, leading to a simple, robust and practical form. This sequence, determined through the process of BSG synthesis, encodes an optical program that defines device functionality. Our approach to synthesis builds on existing knowledge in the design of "analog" gratings through a two-step process: first, exploit the best analog-domain methods, then transform the resulting structure into binary form. Accordingly, we explore the notion of diffractive structure transformation and introduce the principle of "key information". We assemble such key information for Bragg-regime structures, and employ it in the design of grating quantizers based on an atypical form of Delta-Sigma modulation. We illustrate this approach through the synthesis of a complex dense-wavelength division-multiplexed telecom filter featuring 50-GHz channel spacing, -40-dB stopbands, and 25-GHz-wide passbands that are flat to within 0.2 dB.
Keywords :
Bragg gratings; binary sequences; channel spacing; delta-sigma modulation; diffractive optical elements; optical communication equipment; optical design techniques; optical filters; optical waveguide components; wavelength division multiplexing; 50 GHz; binary Bragg-diffractive structure; binary supergrating; channel spacing; delta-sigma modulation; dense-wavelength division-multiplexing; guided-wave technology; key information; spectral design; telecom filter; Assembly; Bragg gratings; Channel spacing; Delta-sigma modulation; Optical control; Optical devices; Optical diffraction; Optical filters; Robustness; Telecommunications; Gratings; optical filters; optical waveguide components; sigma–delta modulation;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2006.870857
Filename :
1610801
Link To Document :
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