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Optimal optical path difference of an asymmetric common-path coherent-dispersion spectrometer

机译:不对称公共通用分散仪的最佳光路径

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摘要

Optical path difference (OPD) is a very significant parameter in the asymmetric common-path coherent-dispersion spectrometer (CODES), which directly determines the performance of the CODES. In order to improve the performance of the instrument as much as possible, a temperature-compensated optimal optical path difference (TOOPD) method is proposed. The method does not only consider the influence of temperature change on the OPD but also effectively solves the problem that the optimal OPD cannot be obtained simultaneously at different wavelengths. Taking the spectral line with a Gaussian-type power spectral density distribution as a representative, the relational expression between the OPD and the visibility of interference fringes formed by the CODES is derived for the stellar absorption/emission line. Further, the optimal OPD is deduced according to the efficiency function, and the relationship between the optimal OPD and wavelength is analyzed. Then, based on the materials' dispersion characteristics, different optical materials are combined and added to the interferometer's reflected and transmitted optical path to implement the optimal OPD at different wavelengths, thereby improving the detection precision. Meanwhile, the materials whose refractive index negatively changes with temperature are selected to reduce or even offset the temperature impact on OPD, and hence the system's stability is improved and further improves the detection precision. Under certain input conditions, the material combination that approximates the optimal OPD is performed within the range of 0.66-0.9 mu m. The simulation results show that the maximal difference between the optimal OPD obtained by the efficiency function and the OPD produced by the material combination is 0.733 mm for the absorption line and 1.122 mm for the emission line, which is reduced by 1 time compared with only one material. The influence of temperature on the OPD can be reduced by 2-3 orders of magnitude by material combination, which greatly ameliorates the stability of the whole spectrometer. Hence, the TOOPD method provides a new idea for further improving the high-precision radial velocity detection of the asymmetric common-path CODES. (C) 2021 Optical Society of America
机译:光程差(OPD)是非对称共光路相干色散光谱仪(CODES)中一个非常重要的参数,它直接决定着CODES的性能。为了尽可能提高仪器的性能,提出了一种温度补偿最佳光程差(TOOPD)方法。该方法不仅考虑了温度变化对OPD的影响,而且有效地解决了在不同波长下不能同时获得最优OPD的问题。以具有高斯型功率谱密度分布的谱线为代表,推导了恒星吸收/发射线的光学参量与编码形成的干涉条纹可见度之间的关系式。进一步,根据效率函数推导出了最佳光学参量分布,并分析了最佳光学参量分布与波长的关系。然后,根据材料的色散特性,将不同的光学材料组合并添加到干涉仪的反射和透射光路中,以实现不同波长下的最佳OPD,从而提高检测精度。同时,选择折射率随温度负变化的材料,以减少甚至抵消温度对OPD的影响,从而提高系统的稳定性,进一步提高检测精度。在一定的输入条件下,在0.66-0.9μm的范围内进行近似最佳OPD的材料组合。模拟结果表明,由效率函数获得的最佳OPD与由材料组合产生的OPD之间的最大差值为0.733 mm(吸收线)和1.122 mm(发射线),与只有一种材料相比,减少了1倍。通过材料组合,可以将温度对OPD的影响降低2-3个数量级,极大地改善了整个光谱仪的稳定性。因此,TOOPD方法为进一步提高非对称公共路径码的高精度径向速度检测提供了新的思路。(2021)美国光学学会

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  • 来源
    《Applied optics》 |2021年第16期|共9页
  • 作者单位

    CAS Key Lab Spectral Imaging Technol Xian 710119 Peoples R China;

    CAS Key Lab Spectral Imaging Technol Xian 710119 Peoples R China;

    Chinese Acad Sci Xian Inst Opt Precis &

    Mechan Xian 710119 Peoples R China;

    Xian Technol Univ Sch Optoelect Engn Xian 710021 Peoples R China;

    CAS Key Lab Spectral Imaging Technol Xian 710119 Peoples R China;

    CAS Key Lab Spectral Imaging Technol Xian 710119 Peoples R China;

    Chinese Acad Sci Natl Astron Observ Nanjing Inst Astron Opt &

    Technol Nanjing 210042 Peoples R China;

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