Title :
High order frequency conversion in the plasma waveguide
Author :
Milchberg, H.M. ; Durfee, C.G. ; Clark, Thomas R.
Author_Institution :
Inst. for Phys. Sci. & Technol., Maryland Univ., College Park, MD, USA
Abstract :
Summary form only given. Nonlinear optics in plasma fibers is distinguished by (1) the unique dispersion properties of the fiber, leading to the wavelength independence of the transverse mode structure; (2) the confinement of extremely high propagating intensities, which gives rise to very high-order nonperturbative processes that can occur with efficiencies comparable to lower order processes; and (3) the dynamic evolution of the plasma waveguide in time, so that the geometric contribution to its dispersion relation is tunable and offers a degree of freedom for phase matching not previously available. We have demonstrated guiding of intensities up to 5/spl times/10/sup 15/ W/cm/sup 2/ in plasma fibers as long as 3 cm. This is well within the range for nonperturbative polarization. Experiments in phase matching and parametric mixing at high intensity are now being performed, using our ability to adjust the waveguide´s length, index depth, and curvature, and the laser pulse´s intensity, width, and wavelength.
Keywords :
optical frequency conversion; optical harmonic generation; plasma filled waveguides; curvature; dispersion properties; dispersion relation; dynamic evolution; extremely high propagating intensities confinement; geometric contribution; high order frequency conversion; high-order nonperturbative processes; index depth; nonlinear optics; parametric mixing; phase matching; plasma fibers; plasma waveguide; transverse mode structure; wavelength independence; Dispersion; Frequency conversion; Nonlinear optics; Optical fiber polarization; Optical frequency conversion; Optical waveguides; Plasma confinement; Plasma properties; Plasma waves; Ultraviolet sources;
Conference_Titel :
Quantum Electronics and Laser Science Conference, 1996. QELS '96., Summaries of Papers Presented at the
Conference_Location :
Anaheim, CA, USA
Print_ISBN :
1-55752-444-0