Polarization-selective optical nanostructures for optical MEMS integration

E. Keeler, S. Rydberg, V. Paeder, H. Herzig, D. Dickensheets, W. Nakagawa
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引用次数: 0

Abstract

Optical nanostructures have the potential to provide useful new functionalities, using materials and fabrication methods that are compatible with standard silicon-based processes. For example, it has been shown that a nanoscale grating coated with a metal layer produces polarization-selective reflectivity (Paeder, 2011 and Paeder et al., 2009), based on the combined effects of form birefringence and a resonant cavity (Tyan et al., 1997). In this work, we adapt this design approach to develop two devices optimized to operate around 1.55 μm wavelength: a polarizing beam splitter, and a polarization-selective reflector. Such devices are of particular interest as they may provide optical properties such as polarization selectivity or enhanced reflectivity using nanostructures compatible with optical micro-electro-mechanical systems (MEMS).
用于光学MEMS集成的偏振选择性光学纳米结构
光学纳米结构有潜力提供有用的新功能,使用与标准硅基工艺兼容的材料和制造方法。例如,有研究表明,涂有金属层的纳米级光栅基于形式双折射和谐振腔的综合效应产生偏振选择性反射率(Paeder, 2011和Paeder等,2009)(Tyan等,1997)。在这项工作中,我们采用这种设计方法开发了两种优化工作在1.55 μm波长附近的器件:偏振分束器和偏振选择性反射器。这种器件特别令人感兴趣,因为它们可以提供光学特性,如偏振选择性或使用与光学微机电系统(MEMS)兼容的纳米结构增强反射率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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