DocumentCode
1291808
Title
Modeling of photoinduced charge separation in germanosilicate optical fibers during UV-excited poling
Author
De Francesco, A. ; Town, G.E.
Author_Institution
Dept. of Electr. & Inf. Eng., Sydney Univ., NSW, Australia
Volume
36
Issue
1
fYear
2000
Firstpage
59
Lastpage
69
Abstract
We report numerical solutions of a proposed model for charge separation and trapping during poling of germanosilicate fiber in the presence of ultraviolet (UV) light. The model was solved quantitatively in the steady state to determine the space charge field distribution after UV-excited poling of a germanosilicate optical fiber with internal electrodes. The resulting internal electric field was found to be up to an order of magnitude higher than the initial poling field, sufficient to produce an effective second-order nonlinearity consistent with experimental observations by the internal field acting on the inherent third-order nonlinearity. The effects of core-cathode spacing, nonuniform defect distributions, and photo-electron recombination rate on the induced /spl chi//sub eff//sup (2)/ were also investigated. It is shown that a small core-cathode spacing is advantageous. Our UV-poled field solutions may also apply to thermal poling, provided we swap the anode and cathode designations. The results suggest that it is optimal to have the core located in the depletion region regardless of poling method.
Keywords
electro-optical effects; germanate glasses; nonlinear optical susceptibility; optical fibre theory; optical glass; optical harmonic generation; space charge; GeO/sub 2/-SiO/sub 2/; UV-excited poling; anode designation; cathode designation; charge separation; charge trapping; core-cathode spacing; depletion region; effective second-order nonlinearity; germanosilicate optical fibers; internal electric field; internal electrodes; internal field; nonuniform defect distributions; numerical solutions; photo-electron recombination rate; photoinduced charge separation; space charge field distribution; steady state; thermal poling; third-order nonlinearity; Anodes; Cathodes; Charge carrier processes; Cities and towns; Electrodes; Electron traps; Glass; Nonlinear optics; Optical fibers; Steady-state;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/3.817639
Filename
817639
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