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Modeling of Electrooptic Polymer Electrical Characteristics in a Three-Layer Optical Waveguide Modulator

机译:三层光波导调制器中电光聚合物电特性的建模

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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~(-8) Hz). The results of the model are compared with experimental data for two polymer systems and show quite good correlation.
机译:电光聚合物波导调制器的电特性通常由各个层的整体电抗来描述。然而,层之间的电阻和电容会显着改变波导调制器的电性能。这些界面特性与边界电荷密度有关,并且受波导堆栈中各层的粘附力的强烈影响。已经导出了电抗模型来研究低频现象。该模型显示,波导叠层频率响应在微波范围以下没有限制作用,并且真正的直流响应需要1000个小时以上的稳定电压。因此,即使在非常低的频率(> 10〜(-8)Hz)下,各层的电抗也是优化核心层两端电压的关键特性。该模型的结果与两种聚合物体系的实验数据进行了比较,并显示出很好的相关性。

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