Title :
Functional Photonic Circuits Based on Semiconductor Quantum Templates in Quantum Well Structures: Processing-Free Monolithic Integration
Author :
Sadeghi, Seyed M. ; Li, Wei
Author_Institution :
Dept. of Phys., Univ. of Alabama in Huntsville, Huntsville, AL, USA
fDate :
5/1/2010 12:00:00 AM
Abstract :
We propose and numerically demonstrate operation of a processing-free functional photonic integrated circuit based on a semiconductor quantum template. This template combines monolayer engineering of the well/barrier interfaces in quantum-well structures with their coherent nonlinear effects to spatially form desired patterns of refractive index, gain and absorption without any need for top-down processes such as lithography, etching, postprocessing epitaxial overgrowth, etc. As an example, we investigate an integrated circuit that includes a distributed feedback laser and a multitask functional section that can act as an ultra-fast attenuator, modulator or amplifier on demand. The distributed feedback laser is based on gain-without inversion to overcome various losses and induce single mode operation. The photonic circuit proposed in this paper is optically activated and holds the promise of highly functional multicomponent integrated photonic circuits fabricated in a single epitaxial growth.
Keywords :
distributed feedback lasers; epitaxial growth; integrated optics; monolayers; optical design techniques; quantum well devices; refractive index; coherent nonlinear effect; distributed feedback laser; epitaxial growth; functional photonic circuit; monolayer engineering; multitask functional section; optical amplifier; optical modulator; photonic integrated circuit; processing free monolithic integration; quantum well structure; refractive index pattern; semiconductor quantum template; ultrafast attenuator; well-barrier interface; Absorption; Distributed feedback devices; Laser feedback; Laser modes; Lithography; Monolithic integrated circuits; Optical attenuators; Photonic integrated circuits; Quantum well lasers; Refractive index; Bottom up; distributed feedback laser; electromagnetically induced transparency; fabrication-less; gain without inversion; gain-coupled; monolithic integration; photonic circuit; processing free; top down;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2009.2037596