Title :
Photonic Band Gap materials: Light trapping crystals
Author_Institution :
Dept. of Phys., Univ. of Toronto, Toronto, ON
Abstract :
Summary form only given. Photonic Band Gap (PBG) materials are artificial, periodic, dielectrics that enable engineering of the most fundamental properties of electromagnetic waves. These include the laws of refraction, diffraction, and spontaneous emission of light. Unlike traditional semiconductors that rely on the propagation of electrons through an atomic lattice, PBG materials execute their novel functions through selective trapping or ldquolocalization of lightrdquo. This is a fundamentally new and largely unexplored property of Maxwellpsilas equations. This is also of great practical importance for all-optical communications, information processing, efficient lighting, and intense laser light delivery in clinical medicine. Three dimensional (3D) PBG materials offer a unique opportunity to simultaneously (i) synthesize micron-scale 3D circuits of light that do not suffer from diffractive losses and (ii) engineer the electromagnetic vacuum density of states in this 3D optical micro-chip. This combined capability opens a new frontier in integrated optics as well as the basic science of radiation-matter interactions. I review recent approaches to micro-fabrication of photonic crystals with a large 3D PBG centered near 1.5 microns. These include direct laser-writing techniques, holographic lithography, and a newly invented optical phase mask lithography technique. I discuss consequences of PBG materials in classical and quantum electrodynamics. These include solar energy trapping in PBG thin films and all-optical transistor action in PBG waveguides.
Keywords :
holography; integrated optics; integrated optoelectronics; light diffraction; light reflection; masks; microfabrication; optical communication; optical fabrication; optical information processing; optical losses; optical materials; optical waveguides; photolithography; photonic band gap; photonic crystals; quantum electrodynamics; radiation pressure; spontaneous emission; 3D PBG material; 3D optical micro-chip; Maxwell´s equation; PBG waveguides; all-optical communication; all-optical transistor action; artificial material; atomic lattice; classical electrodynamics; clinical medicine; dielectric material; diffractive losses; direct laser-writing techniques; electromagnetic vacuum density-of-states; electromagnetic wave properties; electron propagation; holographic lithography; information processing; integrated optics; intense laser light; laws-of-diffraction; laws-of-refraction; light localization; light trapping crystals; micron-scale 3D circuit synthesis; optical phase mask lithography; periodic material; photonic band gap material; photonic crystal microfabrication; quantum electrodynamics; radiation-matter interactions; solar energy trapping; spontaneous emission-of-light; Crystalline materials; Dielectric materials; Electromagnetic diffraction; Electron traps; Holographic optical components; Optical materials; Optical refraction; Photonic band gap; Photonic crystals; Semiconductor materials;
Conference_Titel :
IEEE/LEOS Winter Topicals Meeting Series, 2009
Conference_Location :
Innsbruck
Print_ISBN :
978-1-4244-2610-2
Electronic_ISBN :
978-1-4244-2611-9
DOI :
10.1109/LEOSWT.2009.4771625