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New techniques for integral field spectroscopy - I : design, construction and testing of the GNIRS IFU.

机译:积分光谱的新技术-I:GNIRS IFU的设计,构造和测试。

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摘要

We describe the integral field spectroscopy (IFS) capability of the Gemini Near-infrared Spectrograph (GNIRS) installed on the Gemini-South telescope. This makes use of the Advanced Image Slicer (AIS) optical concept of Content. Image slicing is, in principle, the most efficient technique of IFS. Our design is more compact and adaptable than the previous designs of this type so that the spectrograph can be switched to IFS mode simply by insertion of the integral field unit (IFU) into the focal plane. The near-optimal performance of the system makes it a good choice for instrumentation for future observatories, especially for the multiple-IFS systems required for extremely large telescopes (ELTs).ududThe IFU produces good image quality and high throughput (>90 per cent at wavelengths ≥2.5 μm) which can actually exceed that of a spectrograph with a conventional slit of the same width, due to the use of anamorphism that reduces losses due to diffraction. This also results in a square spatial sampling element (spaxel) while simultaneously providing Nyquist sampling of the slit. At short wavelengths, the throughput is determined by the quality of the finish of the optical surfaces but exceeds 60 per cent at 1 μm.ududThe three multifaceted mirror arrays in the slicing unit were made as monolithic units to avoid alignment errors between slices. This required the development of new freeform diamond-machining techniques which we describe. We present results on the testing of the optical components, and system-level tests to verify performance. We show that the IFU performs better than our expectations in terms of image quality and scattered light and that our model of the throughput, when fed with the results of our metrology of the surface quality, gives an accurate description of the performance measured in the laboratory.ududPaper 2 gives the results of on-sky testing to confirm the results of the laboratory tests and to verify performance by reference to existing data sets obtained with conventional techniques. The verification of our performance model is of great importance to the planning of future instrumentation of this type, as is the 'plug-and-play' nature of the integration with the spectrograph. Further details of the optical design and the optimization process are given in Paper 3.
机译:我们描述了安装在双子座南望远镜上的双子座近红外光谱仪(GNIRS)的积分场光谱(IFS)功能。这利用了内容的高级图像切片器(AIS)光学概念。原则上,图像切片是IFS的最有效技术。我们的设计比以前的此类设计更为紧凑和适应性强,因此只需将积分场单元(IFU)插入焦平面即可将光谱仪切换至IFS模式。该系统的近乎最佳性能使其成为未来天文台仪器的理想选择,尤其是超大望远镜(ELT)所需的多IFS系统。 ud udIFU可产生良好的图像质量和高吞吐量(> 90波长≥2.5μm时的平均百分比),实际上可以超过具有相同宽度的传统狭缝的光谱仪的光谱,这是由于使用了变形技术,可减少衍射引起的损耗。这还导致方形空间采样元素(spaxel),同时提供狭缝的奈奎斯特采样。在短波长下,吞吐量取决于光学表面的光洁度,但在1μm时超过60%。 ud ud切片单元中的三个多面镜阵列制成单片单元,以避免切片之间的对准误差。这需要开发我们描述的新型自由形式的金刚石加工技术。我们介绍了光学组件的测试结果,以及用于验证性能的系统级测试。我们证明,IFU在图​​像质量和散射光方面的表现要好于我们的预期,并且我们的吞吐量模型在获得表面质量计量结果后,可以准确描述实验室中测得的性能。 ud ud论文2给出了空中测试的结果,以确认实验室测试的结果并参考通过常规技术获得的现有数据集来验证性能。验证我们的性能模型对于这种类型的未来仪器的规划至关重要,与光谱仪集成的“即插即用”特性也是如此。论文3给出了光学设计和优化过程的更多细节。

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