KSIM:模拟KIDSpec,一种用于光学/近红外的微波动力学电感探测器光谱仪

V. B. Hofmann, K. O’Brien
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引用次数: 1

摘要

KIDSpec,动态电感检测器光谱仪,是一种被提议的光学到近红外微波动态电感检测器(MKID)光谱仪。MKIDs是一种超导光子计数探测器,能够分辨入射光子的能量和到达时间。KIDSpec将使用这些探测器来分离来自光栅的入射光谱指令,因此不需要交叉分散器。在本文中,我们提出了一个模拟工具,用于KIDSpec在施工时的潜在性能,以优化给定的设计。这个模拟工具是KIDSpec模拟器(KSIM),一个Python包,用于模拟各种KIDSpec和观测参数。模拟了一系列天体物理对象:恒星对象,SDSS观测到的星系,Seyfert星系和美洲虎目录中的模拟星系光谱。模拟了KIDSpec的多种中光谱分辨率设计。模拟了MKID能量分辨率方差和死像素可能产生的影响,并使用减少的卡方(RCS)值观察对KIDSpec性能的影响。使用当前仪器的死像素百分比,RCS结果在模拟的一个设计中最坏的情况下只增加到1.21。并对KSIM和X-Shooter ETC的目标模拟进行了信噪比比较。KIDSpec在短时间和微弱观测方面比X-Shooter有了特别的改进。对于曝光时间为180秒的Seyfert星系(mR = 21)模拟,KIDSpec的平均信噪比为4.8,而X-Shooter的平均信噪比为1.5。利用KSIM对KIDSpec的设计进行优化,进一步提高仪器的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
KSIM: simulating KIDSpec, a Microwave Kinetic Inductance Detector spectrograph for the optical/NIR
KIDSpec, the Kinetic Inductance Detector Spectrometer, is a proposed optical to near-IR Microwave Kinetic Inductance Detector (MKID) spectrograph. MKIDs are superconducting photon counting detectors which are able to resolve the energy of incoming photons and their time of arrival. KIDSpec will use these detectors to separate incoming spectral orders from a grating, thereby not requiring a cross-disperser. In this paper, we present a simulation tool for KIDSpec’s potential performance upon construction to optimize a given design. This simulation tool is the KIDSpec Simulator (KSIM), a Python package designed to simulate a variety of KIDSpec and observation parameters. A range of astrophysical objects are simulated: stellar objects, an SDSS observed galaxy, a Seyfert galaxy, and a mock galaxy spectrum from the JAGUAR catalogue. Multiple medium spectral resolution designs for KIDSpec are simulated. The possible impact of MKID energy resolution variance and dead pixels was simulated, with impacts on KIDSpec performance observed using the Reduced Chi-Squared (RCS) value. Using dead pixel percentages from current instruments, the RCS result was found to only increase to 1.21 at worst for one of the designs simulated. SNR comparisons of object simulations between KSIM and X-Shooter’s ETC were also simulated. KIDSpec offers a particular improvement over X-Shooter for short and faint observations. For a Seyfert galaxy (mR = 21) simulation with a 180 s exposure, KIDSpec had an average SNR of 4.8, in contrast to 1.5 for X-Shooter. Using KSIM the design of KIDSpec can be optimized to improve the instrument further.
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