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The infrared imaging spectrograph (IRIS) for TMT: reflective ruled diffraction grating performance testing and discussion

机译:用于TMT的红外成像光谱仪(IRIS):反射直纹衍射光栅性能测试和讨论

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摘要

We present the efficiency of near-infrared reflective ruled diffraction gratings designed for the InfraRed Imaging Spectrograph (IRIS). IRIS is a first light, integral field spectrograph and imager for the Thirty Meter Telescope (TMT) and narrow field infrared adaptive optics system (NFIRAOS). IRIS will operate across the near-infrared encompassing the ZYJHK bands (~0.84 - 2.4μm) with multiple spectral resolutions. We present our experimental setup and analysis of the efficiency of selected reflective diffraction gratings. These measurements are used as a comparison sample against selected candidate Volume Phase Holographic (VPH) gratings (see Chen et al., this conference). We investigate the efficiencies of five ruled gratings designed for IRIS from two separate vendors. Three of the gratings accept a bandpass of 1.19-1.37μm (J band) with ideal spectral resolutions of R=4000 and R=8000, groove densities of 249 and 516 lines/mm, and blaze angles of 9.86° and 20.54° respectively. The other two gratings accept a bandpass of 1.51-1.82μm (H Band) with an ideal spectral resolution of R=4000, groove density of 141 lines/mm, and blaze angle of 9.86°. The fraction of flux in each diffraction mode was compared to both a pure reflection mirror as well as the sum of the flux measured in all observable modes. We measure the efficiencies off blaze angle for all gratings and the efficiencies between the polarization transverse magnetic (TM) and transverse electric (TE) states. The peak reflective efficiencies are 98.90 ± 3.36% (TM) and 84.99 ± 2.74% (TM) for the H-band R=4000 and J-band R=4000 respectively. The peak reflective efficiency for the J-band R=8000 grating is 78.78 ± 2.54% (TE). We find that these ruled gratings do not exhibit a wide dependency on incident angle within ±3°. Our best-manufactured gratings were found to exhibit a dependency on the polarization state of the incident beam with a ~10-20% deviation, consistent with the theoretical efficiency predictions. This work will significantly contribute to the selection of the final grating type and vendor for the IRIS optical system, and are also pertinent to current and future near-infrared astronomical spectrographs.
机译:我们介绍了为红外成像光谱仪(IRIS)设计的近红外反射直纹衍射光栅的效率。 IRIS是三十米望远镜(TMT)和窄场红外自适应光学系统(NFIRAOS)的第一台光,积分场光谱仪和成像仪。 IRIS将在具有多个光谱分辨率的ZYJHK波段(约0.84-2.4μm)的近红外波段工作。我们介绍了我们的实验装置以及对所选反射型衍射光栅效率的分析。这些测量值用作与选定的候选体积相全息(VPH)光栅的比较样本(请参见Chen等人,本次会议)。我们调查了两个独立供应商为IRIS设计的五种直纹光栅的效率。三个光栅接受1.19-1.37μm(J波段)的带通,理想光谱分辨率为R = 4000和R = 8000,凹槽密度分别为249和516线/ mm,闪耀角分别为9.86°和20.54°。另外两个光栅接受1.51-1.82μm(H波段)的带通,理想光谱分辨率为R = 4000,凹槽密度为141线/ mm,闪耀角为9.86°。将每种衍射模式下的通量分数与纯反射镜以及在所有可观察模式下测得的通量总和进行比较。我们测量所有光栅的闪耀角效率以及极化横向磁(TM)和横向电(TE)状态之间的效率。对于H波段R = 4000和J波段R = 4000,峰值反射效率分别为98.90±3.36%(TM)和84.99±2.74%(TM)。 J波段R = 8000光栅的峰值反射效率为78.78±2.54%(TE)。我们发现这些直角光栅对±3°以内的入射角没有很大的依赖性。我们发现,我们制造最好的光栅对入射光束的偏振态有一定的依赖性,偏差约为10-20%,这与理论上的效率预测是一致的。这项工作将大大有助于为IRIS光学系统选择最终的光栅类型和供应商,并且还与当前和将来的近红外天文光谱仪有关。

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