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Polarization independent electro-optical waveguides with liquid crystals in isotropic phase

机译:具有各向同性相中液晶的偏振独立电光波导

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Electro-optically induced waveguides can be used in fiber optic networks for optical power control and the distribution of optical signals transmitted over optical fibers. Reliable operation is ensured with this type of waveguides due to their non-mechanical principle of operation. Their polarization dependent behavior caused by field-induced birefringence effects may limit however their practical applications. We report on a method to reduce the polarization dependent loss in electro-optically induced waveguides with a core made of liquid crystals in isotropic phase. The concept design enables a controlled adjustment of the electric field distribution, which is responsible for inducing and shaping the optical mode, by employing an optimized electrode arrangement. In this new waveguide structure, the TM and TE modes coexist spatially and are guided in a similar way. In order to demonstrate this concept, straight and bending waveguides in 1×1 and 1×2 light input to output configurations have been designed and fabricated. The electrode arrangement and single mode waveguide geometry were optimized using FEM simulations. Bulk silicon micromachining was used to fabricate these waveguides. In particular, the manufactured device consisted of two processed silicon substrates with a liquid crystal layer enclosed in between. Devices tested with varying driving voltage have revealed comparable transmitted power for both TE and TM modes. Very low polarization dependent losses over a more than 20 dB wide dynamic attenuation range have been obtained.
机译:电光诱导的波导可用于光学电力控制和光纤通过光纤传输的光信号分布。由于其非机械操作原理,通过这种类型的波导确保了可靠的操作。它们由现场诱导的双折射效应引起的偏振依赖性行为可能限制它们的实际应用。我们报告了一种在各向同性相中由液晶制成的核心依赖于电光诱导的波导中的偏振依赖性损失的方法。概念设计能够通过采用优化的电极布置来控制电场分布的调节,该电场分布负责诱导和整形光学模式。在这种新的波导结构中,TM和TE模式在空间上共存并以类似的方式引导。为了演示该概念,设计和制造了1×1和1×2光输入的直线和弯曲波导,并制造了输出配置。使用FEM模拟优化电极布置和单模波导几何形状。散装硅微机械用来制造这些波导。特别地,制造装置由两个加工式硅基板组成,其具有封装在其间的液晶层。具有不同驱动电压测试的设备已经显示了TE和TM模式的可比传输功率。已经获得了超过20dB宽动态衰减范围的非常低的极化相关损耗。

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