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Electrical transfer function and poling mechanisms for nonlinear optical polymer modulators.

机译:非线性光学聚合物调制器的电传递函数和极化机制。

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Electro-Optic Polymers hold great promise in increased electro-optic coefficients as compared to their inorganic corollaries. Many researchers have focused on quantum chemistry to describe how the dipoles respond to temperature and electric fields. Much work has also been done for single layer films to confirm these results. For optical applications, waveguide structures are utilized to guide the optical waves in 3 layer stacks. Electrode poling is the only practical poling method for these structures. This research takes an electrical engineering approach to develop poling models and electrical and optical transfer functions of the waveguide structure. The key aspect of the poling model is the large boundary charge density deposited during the poling process. The boundary charge density also has a large effect on the electrical transfer function which is used to explain the transient response of the system. These models are experimentally verified. Experiments study poling parameters, including time, temperature, and voltage. These studies verify the poling conditions for CLDX/APC and CLDZ/APEC guest host electro-optic polymer films in waveguide stacks predicted by the theoretical developments.
机译:与无机推论相比,光电聚合物在提高光电系数方面具有广阔的前景。许多研究人员专注于量子化学,以描述偶极子如何响应温度和电场。为了确认这些结果,对单层膜也做了很多工作。对于光学应用,波导结构用于在3层堆栈中引导光波。电极极化是这些结构的唯一实用极化方法。这项研究采用电气工程方法来开发极化模型以及波导结构的电气和光学传递函数。极化模型的关键方面是在极化过程中沉积的大边界电荷密度。边界电荷密度也对电传递函数有很大影响,该函数用于解释系统的瞬态响应。这些模型已经过实验验证。实验研究极化参数,包括时间,温度和电压。这些研究验证了由理论发展预测的波导堆叠中CLDX / APC和CLDZ / APEC客体宿主电光聚合物薄膜的极化条件。

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