DocumentCode :
753559
Title :
Modeling of electrooptic polymer electrical characteristics in a three-layer optical waveguide modulator
Author :
Watson, Michael D. ; Ashley, Paul R. ; Guenthner, Andrew J. ; Abushagur, Mustafa A G
Author_Institution :
NASA Marshall Space Flight Center, Huntsville, AL, USA
Volume :
41
Issue :
4
fYear :
2005
fDate :
4/1/2005 12:00:00 AM
Firstpage :
589
Lastpage :
595
Abstract :
The electrical characteristics of electrooptic polymer waveguide modulators are often described by the bulk reactance of the individual layers. However, the resistance and capacitance between the layers can significantly alter the electrical performance of a waveguide modulator. These interface characteristics are related to the boundary charge density and are strongly affected by the adhesion of the layers in the waveguide stack. An electrical reactance model has been derived to investigate this phenomenon at low frequencies. The model shows the waveguide stack frequency response has no limiting effects below the microwave range and that a true dc response requires a stable voltage for over 1000 h. Thus, reactance of the layers is the key characteristic of optimizing the voltage across the core layer, even at very low frequencies (>10-6 Hz). The results of the model are compared with experimental data for two polymer systems and show quite good correlation.
Keywords :
capacitance; electric resistance; electro-optical effects; electro-optical modulation; optical multilayers; optical polymers; optical waveguides; boundary charge density; bulk reactance; capacitance; electrical reactance model; electrooptic polymer; layer adhesion; optical waveguide modulator; resistance; Capacitance; Electric resistance; Electric variables; Electrooptic modulators; Electrooptical waveguides; Frequency; Optical modulation; Optical polymers; Optical waveguides; Voltage; Electrooptic polymer; Mach–Zehnder (MZ) modulator; frequency response; waveguide; waveguide layer adhesion; waveguide reactance;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2005.843607
Filename :
1411964
Link To Document :
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