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Photonic lantern behaviour and implications for instrument design

机译:光子灯笼的行为及其对仪器设计的影响

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Photonic lanterns are an important enabling technology for astrophotonics with a wide range of potential applications including fibre Bragg grating OH suppression, integrated photonic spectrographs and fibre scramblers for high resolution spectroscopy. The behaviour of photonic lanterns differs in several important respects from the conventional fibre systems more frequently used in astronomical instruments and a detailed understanding of this behaviour is required in order to make the most effective use of this promising technology. To this end we have undertaken a laboratory study of photonic lanterns with the aim of developing an empirical model for the mapping from input to output illumination distributions. We have measured overall transmission and near field output light distributions as a function of input angle of incidence for photonic lanterns with between 19 and 61 cores. We present the results of this work, highlight the key differences between photonic lanterns and conventional fibres, and illustrate the implications for instrument design via a case study, the design of the PRAXIS spectrograph. The empirical photonic lantern model was incorporated into an end-to-end PRAXIS performance model which was used to optimise the design parameters of the instrument. We describe the methods used and the resulting conclusions. The details of photonic lantern behaviour proved particularly important in selecting the optimum on sky field of view per fibre and in modelling of the instrument thermal background.
机译:光子灯笼是航天光子学的一项重要的重要技术,具有广泛的潜在应用,包括光纤布拉格光栅OH抑制,集成光子光谱仪和用于高分辨率光谱的光纤扰频器。光子灯的行为在几个重要方面与天文学仪器中更常用的常规光纤系统有所不同,因此需要对这种行为进行详细的了解,才能最有效地利用这一有前途的技术。为此,我们进行了光子灯笼的实验室研究,目的是开发一个经验模型,用于从输入到输出照明分布的映射。我们已经测量了19到61个芯子的光子灯的整体透射率和近场输出光分布与入射角的关系。我们介绍了这项工作的结果,重点介绍了光子灯笼和传统光纤之间的主要区别,并通过案例研究(PRAXIS光谱仪的设计)说明了仪器设计的意义。经验性光子灯笼模型被纳入端到端PRAXIS性能模型中,该模型用于优化仪器的设计参数。我们描述了所使用的方法和得出的结论。事实证明,在选择每根光纤的最佳天空视野以及仪器热背景建模时,光子灯笼行为的细节尤为重要。

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