DocumentCode :
834039
Title :
Thermal grating-mediated wave mixing and beam amplification in nematic liquid crystal thin films
Author :
Yan, P.Y. ; Khoo, Iam-Choon
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Volume :
25
Issue :
3
fYear :
1989
fDate :
3/1/1989 12:00:00 AM
Firstpage :
520
Lastpage :
529
Abstract :
A model is presented of thermal grating-mediated wave mixing and amplification. The model includes a strong pump beam, a weak probe beam, and a first-order diffracted beam. The coupled Maxwell´s wave equations and the thermal diffusion equation are solved using a self-consistent formalism. The influence of various input beam parameters (the pump to probe beam intensity ratio, beam intensities, crossing angle, wavelength) and sample parameters (the thermal nonlinear coefficient, thermal conductivity, sample thickness) on the wave mixing effects is considered. Some recently observed infrared beam amplification effects have been qualitatively described by the theory of the optimum configuration for signal (probe) beam amplification with nematic liquid crystals. The results are important for optical phase conjugation and self-oscillation processes involving infrared lasers, and demonstrate the particular usefulness of liquid crystals for these applications
Keywords :
diffraction gratings; liquid films; nematic liquid crystals; optical phase conjugation; IR lasers; beam amplification; beam intensities; coupled Maxwell´s wave equations; crossing angle; first-order diffracted beam; infrared beam amplification effects; infrared lasers; nematic liquid crystal thin films; optical phase conjugation; probe beam; pump beam; pump to probe beam intensity ratio; sample thickness; self-oscillation processes; thermal conductivity; thermal diffusion equation; thermal grating-mediated wave mixing; thermal nonlinear coefficient; Diffraction; Gratings; Laser beams; Laser excitation; Liquid crystals; Maxwell equations; Nonlinear equations; Partial differential equations; Probes; Thermal conductivity;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.18565
Filename :
18565
Link To Document :
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