Sauer Hervé, Fossi Armande Pola, Ferrec Yann, Guerineau Nicolas, Minet Jean, Taboury Jean, Chavel Pierre
Appl Opt. 2018 Nov 1;57(31):9488-9498. doi: 10.1364/AO.57.009488.
Birefringent interferometers are often used for compact static Fourier transform spectrometers. In such devices, several uniaxial birefringent parallel or prismatic plates are stacked, with their optical axes set so that there is an efficient coupling from ordinary to extraordinary and extraordinary to ordinary eigenmodes of two successive plates. Such coupling, aside from few particular cases, is, however, not perfect, an effect that may adversely affect performance. In order to help the design and the tolerancing of these interferometers, we have developed a numerical modeling based on the propagation of plane waves inside and through the interface of birefringent media. This tool evaluates the traveled optical path length and the amplitude of the different polarization modes, enabling prediction of both the optical path differences on the interferometer outputs and the unwanted coupling strengths and related stray wave amplitudes. The tool behavior is illustrated on Savart and double-Wollaston interferometers and compared with experimental characterization of a calcite double-Wollaston prism.
双折射干涉仪常用于紧凑型静态傅里叶变换光谱仪。在这类装置中,几块单轴双折射平行板或棱镜板堆叠在一起,其光轴设置成使得普通本征模到非常本征模以及非常本征模到普通本征模在两块连续的板之间有高效耦合。然而,除了少数特殊情况外,这种耦合并不完美,这一效应可能会对性能产生不利影响。为了辅助这些干涉仪的设计和公差分析,我们基于平面波在双折射介质内部及其界面处的传播开发了一种数值模型。该工具可评估传播的光程长度以及不同偏振模的振幅,从而能够预测干涉仪输出端的光程差以及不需要的耦合强度和相关杂散波振幅。该工具的性能在萨伐尔干涉仪和双沃拉斯顿干涉仪上得到了展示,并与方解石双沃拉斯顿棱镜的实验表征结果进行了比较。