Proposed Square Spiral Microfabrication Architecture for Large Three-Dimensional Photonic Band Gap Crystals
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- 11 May 2001
- journal article
- other
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 292 (5519), 1133-1135
- https://doi.org/10.1126/science.1059479
Abstract
We present a blueprint for a three-dimensional photonic band gap (PBG) material that is amenable to large-scale microfabrication on the optical scale using glancing angle deposition methods. The proposed chiral crystal consists of square spiral posts on a tetragonal lattice. In the case of silicon posts in air (direct structure), the full PBG can be as large as 15% of the gap center frequency, whereas for air posts in a silicon background (inverted structure) the maximum PBG is 24% of the center frequency. This PBG occurs between the fourth and fifth bands of the photon dispersion relation and is very robust to variations (disorder) in the geometrical parameters of the crystal.Keywords
This publication has 17 references indexed in Scilit:
- Absolute three-dimensional photonic band gap in the infrared regime in woven structuresPhysical Review B, 1999
- Advanced techniques for glancing angle depositionJournal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures, 1998
- Spiral three-dimensional photonic-band-gap structurePhysical Review B, 1998
- Photonic crystals: putting a new twist on lightNature, 1997
- Photonic bands: simple-cubic latticeJournal of the Optical Society of America B, 1993
- Photonic band structure: The face-centered-cubic case employing nonspherical atomsPhysical Review Letters, 1991
- Existence of a photonic gap in periodic dielectric structuresPhysical Review Letters, 1990
- Strong localization of photons in certain disordered dielectric superlatticesPhysical Review Letters, 1987
- Inhibited Spontaneous Emission in Solid-State Physics and ElectronicsPhysical Review Letters, 1987
- Electromagnetic Absorption in a Disordered Medium near a Photon Mobility EdgePhysical Review Letters, 1984