Linear photonic crystal waveguides with different channel widths realized in silicon membranes are investigated by means of attenuated-total-reflectance (ATR) measurements. The dispersion of line-defect modes with both parities with respect to a vertical plane bisecting the waveguide channel is determined, thereby allowing one to distinguish between multimode and single-mode behavior. The presence of a single-mode frequency window in the guided-mode region below the light line is established not only for standard W1 waveguides with channel width w0=sqrt(3)a (i.e., a missing row of holes in the triangular lattice with lattice constant a), but also for W1.5 waveguides where the channel width is increased to w=1.5w0. The results agree with theoretical predictions and might be important for the realization of linear photonic crystal waveguides with single-mode behavior and ultralow propagation losses.

Single-mode versus multi-mode behavior in Silicon photonic crystal waveguides measured by attenuated total reflectance

GALLI, MATTEO;BAJONI, DANIELE;PATRINI, MADDALENA;GUIZZETTI, GIORGIO;GERACE, DARIO;ANDREANI, LUCIO;BELOTTI, MICHELE;
2005-01-01

Abstract

Linear photonic crystal waveguides with different channel widths realized in silicon membranes are investigated by means of attenuated-total-reflectance (ATR) measurements. The dispersion of line-defect modes with both parities with respect to a vertical plane bisecting the waveguide channel is determined, thereby allowing one to distinguish between multimode and single-mode behavior. The presence of a single-mode frequency window in the guided-mode region below the light line is established not only for standard W1 waveguides with channel width w0=sqrt(3)a (i.e., a missing row of holes in the triangular lattice with lattice constant a), but also for W1.5 waveguides where the channel width is increased to w=1.5w0. The results agree with theoretical predictions and might be important for the realization of linear photonic crystal waveguides with single-mode behavior and ultralow propagation losses.
2005
Applied Physics/Condensed Matter/Materials Science encompasses the resources of three related disciplines: Applied Physics, Condensed Matter Physics, and Materials Science. The applied physics resources are concerned with the applications of topics in condensed matter as well as optics, vacuum science, lasers, electronics, cryogenics, magnets and magnetism, acoustical physics and mechanics. The condensed matter physics resources are concerned with the study of the structure and the thermal, mechanical, electrical, magnetic and optical properties of condensed matter. They include superconductivity, surfaces, interfaces, thin films, dielectrics, ferroelectrics and semiconductors. The materials science resources are concerned with the physics and chemistry of materials and include ceramics, composites, alloys, metals and metallurgy, nanotechnology, nuclear materials, adhesion and adhesives. Resources dealing with polymeric materials are listed in the Organic Chemistry/Polymer Science category.
Sì, ma tipo non specificato
Inglese
Internazionale
STAMPA
72
125322
Photonic Crystal Waveguides; Band Dispersion; Attenuated Total Reflectance
http://link.aps.org/doi/10.1103/PhysRevB.72.125322
8
info:eu-repo/semantics/article
262
Galli, Matteo; Bajoni, Daniele; Patrini, Maddalena; Guizzetti, Giorgio; Gerace, Dario; Andreani, Lucio; Belotti, Michele; Chen, Y.
1 Contributo su Rivista::1.1 Articolo in rivista
none
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/137604
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 33
  • ???jsp.display-item.citation.isi??? 29
social impact