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fbtwitterlinkedinvimeoflicker grey 14rssslideshare1
Mcdonald, GS; Christian, JM; Heyes, AS; Millington, NGI; Walsh, TM; Huang, JG
Publisher: Optical Society of America
Languages: English
Types: Unknown
Subjects: media_dig_tech_and_creative_econ, other, energy

Classified by OpenAIRE into

arxiv: Physics::Optics
We report on our latest research in the field of spontaneous spatial fractal patterns. New analyses, results and potential applications are reported for nonlinear ring cavities and kaleidoscope laser systems.
  • The results below are discovered through our pilot algorithms. Let us know how we are doing!

    • [1] J. G. Huang and G. S. McDonald, “Spontaneous optical fractal pattern formation,” Phys. Rev. Lett. 94, 174101 (2005).
    • [2] W. J. Firth, “Spatial instabilities in a Kerr medium with single feedback mirror,” J. Mod. Opt. 37, 151 (1990).
    • [3] J. G. Huang, J. M. Christian, G. S. McDonald, “Spontaneous spatial optical fractal patterns in nonlinear ring cavities,” submitted 2011.
    • [4] J. B. Geddes et al., “Hexagons and squares in a passive nonlinear optical system,” Phys. Rev. A 50, 3471 (1994).
    • [5] S. Chi and Q. Guo, “Vector theory of self-focusing of an optical beam in Kerr media,” Opt. Lett. 20, 1598 (1995).
    • [6] G. P. Karman, G. S. McDonald, G. H. C. New and J. P. Woerdman, “Fractal modes in unstable resonators,” Nature 402, 138 (1999).
    • [7] M. Berry, “Fractal modes of unstable lasers with polygonal and circular mirrors,” Opt. Commun. 200, 321 (2001).
    • [8] J. G. Huang, J. M. Christian and G. S. McDonald, “Fresnel diffraction and fractal patterns from polygonal apertures,” J. Opt. Soc. Am. A 23, 2768 (2006).
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