DocumentCode
2296890
Title
Semiconductor microcavity solitons
Author
Taranenko, V. ; Weiss, C.O.
Author_Institution
Phys. Tech. Bundesanstalt, Braunschweig, Germany
fYear
2003
fDate
19-20 Sept. 2003
Firstpage
1
Lastpage
2
Abstract
Spatial solitons in nonlinear optical resonators are structures, self localized in a balance of diffraction and nonlinear effects. Due to their bistability they can carry information and are thus interesting for schemes of parallel optical information processing. Various types of spatial cavity solitons exist: bright-, dark-, phase solitons, a special form are vortices (which are tristable) which illustrate vividly the relation of optics to fluids. For technical applications speed is important. We have therefore shown the existence and the manipulation (such as switching solitons on and off) of bright and dark solitons in semiconductor GaAs/GaAlAs quantum-well microcavities. In analogy to 1D diffraction- free discrete solitons we have numerically found that in photonic crystal microresonators the soliton size can be decreased down to ∼1λ, increasing the possible information density two orders of magnitude over normal solitons with diffraction.
Keywords
III-V semiconductors; gallium arsenide; light diffraction; microcavities; optical information processing; optical resonators; optical solitons; optical vortices; photonic crystals; semiconductor quantum wells; GaAlAs; GaAs; GaAs-GaAlAs; bright solitons; dark solitons; diffraction; free discrete solitons; microresonators; optical information processing; optical resonators; phase solitons; photonic crystal; quantum-well microcavity; semiconductor microcavity solitons; spatial solitons; switching solitons; vortices; Gallium arsenide; Information processing; Microcavities; Nonlinear optics; Optical bistability; Optical diffraction; Optical resonators; Optical solitons; Optical vortices; Quantum wells;
fLanguage
English
Publisher
ieee
Conference_Titel
Laser and Fiber-Optical Networks Modeling, 2003. Proceedings of LFNM 2003. 5th International Workshop on
Print_ISBN
0-7803-7709-5
Type
conf
DOI
10.1109/LFNM.2003.1246059
Filename
1246059
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