DocumentCode
1742000
Title
Stable vortex rings due to parametric wave mixing
Author
Towers, I. ; Sammut, R.A. ; Buryak, V. ; Kolossovski, K. ; Malomed, Boris A.
Author_Institution
Sch. of Math. & Stat., Australian Defence Force Acad., Canberra, ACT, Australia
fYear
2000
fDate
12-12 May 2000
Firstpage
199
Lastpage
200
Abstract
Summary form only given. Since the pioneering experimental results of optical vortex solitons have been in the centre of interest because of their fundamental importance in optics and other fields of physics, and because of their potential applications for all-optical information processing. Formally conventional vortex solitons exist on an infinite nonzero background, which in practice requires rather large beam sizes for vortex observation. A possible solution to this problem is the use of ring solitons-vortices imprinted in bright (i.e., localised) self-guided beams. Unfortunately, recent studies have shown that both for materials with purely quadratic or purely cubic (Kerr) nonlinearities ring solitons are always unstable. A solution to this problem, in turn, could be in using optical media with a cubic-quintic nonlinear response which however represents a very special material situation and also requires very high optical intensities. In this work we suggest a realistic physical model which can support stable ring solitons as a result of parametric wave mixing in optical media with both quadratic and cubic nonlinearities.
Keywords
multiwave mixing; optical solitons; stability; Kerr nonlinearities; all-optical information processing; cubic nonlinearities; cubic-quintic nonlinear response; large beam sizes; optical media; optical vortex solitons; parametric wave mixing; physical model; purely cubic; purely quadratic; quadratic nonlinearities; ring solitons; stable vortex rings; vortex observation; Artificial intelligence; Biomedical optical imaging; Electrons; Gratings; Nonlinear optics; Optical mixing; Optical modulation; Optical vortices; Optimized production technology; Thermoelectricity;
fLanguage
English
Publisher
ieee
Conference_Titel
Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
Conference_Location
San Francisco, CA, USA
ISSN
1094-5695
Print_ISBN
1-55752-608-7
Type
conf
Filename
901982
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