Design of encapsulated transmission grism with high diffraction efficiency and low polarization

Yuedan Wu, Huiying Chen, Muran He, Weimin Shen
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Abstract

In view of the problems that the existing subwavelength transmission grating structure parameters require high processing technologies and are difficult to prepare, this paper explores and investigates the design simulation of encapsulated grism grating based on the finite element method (FEM). The variation of diffraction efficiency and polarization sensitivity of encapsulated grism is explored for different groove structures, trench depth and duty cycle, according to the requirements of high diffraction efficiency and low polarization sensitivity. The grating surface etched onto a fused silica substrate is formed by binary structure of grooves and trenches filled by a high refractive index multi-layer coating, working at Littrow configuration in the SWIR-1 (1590-1625nm) and SWIR-2 (1635-1670nm). The simulation results show that the average diffraction efficiency exceeds 85% and the polarization sensitivity is less than 5% with a wide tolerance range when the depth-period ratio is about 2 and the duty cycle is around 0.6. The diffraction efficiency and polarization sensitivity meet the design requirements, substantially improving the efficiency of transmission grating design and processing. This enables compact optical design to achieve high signal-to-noise ratio and low stray light to meet the critical radiation measurement accuracy requirements.
设计具有高衍射效率和低偏振的封装透射光栅
针对现有亚波长透射光栅结构参数加工技术要求高、制备难度大等问题,本文基于有限元法(FEM)对封装光栅的设计模拟进行了探索和研究。根据高衍射效率和低偏振灵敏度的要求,探讨了不同沟槽结构、沟槽深度和占空比下封装光栅的衍射效率和偏振灵敏度的变化。在熔融石英衬底上蚀刻的光栅表面由高折射率多层涂层填充的凹槽和沟槽二元结构构成,在利特罗构型下工作于 SWIR-1 波段(1590-1625nm)和 SWIR-2 波段(1635-1670nm)。仿真结果表明,当深度周期比约为 2、占空比约为 0.6 时,平均衍射效率超过 85%,偏振灵敏度小于 5%,且公差范围较宽。衍射效率和偏振灵敏度均满足设计要求,大大提高了透射光栅设计和加工的效率。这使得紧凑型光学设计能够实现高信噪比和低杂散光,从而满足关键的辐射测量精度要求。
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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