DocumentCode
1741710
Title
Waveguiding at 1500 nm using photonic crystal structures in silicon on insulator wafers
Author
Loncar, M. ; Nedeljkovic, D. ; Cotteverte, J.-C. ; Doll, T. ; Scherer, Axel ; Gerretsen, J. ; Pearsall, T.P.
Author_Institution
Dept. of Electr. Eng., California Inst. of Technol., Pasadena, CA, USA
fYear
2000
fDate
12-12 May 2000
Firstpage
27
Abstract
Summary form only given. Planar photonic crystal waveguides and devices may offer the possibility to build photonic circuits with greater density and new functionality compared to existing waveguide devices that are based on the control of light by refraction. The primary vehicles for this research are the study of microcavity lasers as a path to understanding new functionality, and the propagation of light around sharp bends as the path to increasing the packing density of planar optical circuits. We report our results on the successful demonstration of coupling and guiding of light in a planar photonic circuit incorporating sharp bends. Photonic crystal structures were designed to confine light in a silicon waveguide at 1500 nm, by drilling air holes at periodic intervals around the waveguide region. Both square and hexagonal structures have been studied. The pattern design was transferred to a silicon-on-insulator wafer using direct-write e-beam lithography. The pattern was etched into the silicon layer by chemically assisted ion beam etching (CAIBE).
Keywords
electron beam lithography; elemental semiconductors; etching; ion beam applications; optical fabrication; optical materials; optical planar waveguides; photonic band gap; silicon; silicon-on-insulator; 1550 nm; Si layer; Si on insulator wafers; Si waveguide; Si-SiO/sub 2/; Si-on-insulator wafer; air holes; chemically assisted ion beam etching; coupling; direct-write electron-beam lithography; functionality; guiding; hexagonal structures; light confinement; light propagation; microcavity lasers; packing density; pattern design; periodic intervals; photonic circuits; photonic crystal structures; planar optical circuits; planar photonic circuit; planar photonic crystal devices; planar photonic crystal waveguides; sharp bends; square structures; waveguide devices; waveguide region; waveguiding; Circuits; Etching; Lighting control; Optical control; Optical planar waveguides; Optical refraction; Optical waveguides; Photonic crystals; Planar waveguides; Silicon on insulator technology;
fLanguage
English
Publisher
ieee
Conference_Titel
Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
Conference_Location
San Francisco, CA, USA
ISSN
1094-5695
Print_ISBN
1-55752-608-7
Type
conf
Filename
901377
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