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Improving the photometric precision of IRAC Channel 1

机译:提高IRAC通道1的光度精度

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Planning is underway for a possible post-cryogenic mission with the Spitzer Space Telescope. Only Channels 1 and 2 (3.6 and 4.5μm) of the Infrared Array Camera (IRAC) will be operational; they will have unmatched sensitivity from 3 to 5 microns until the James Webb Space Telescope is launched. At SPIE Orlando, Mighell described his NASA-funded MATPHOT algorithm for precision stellar photometry and astrometry and presented MATPHOT-based simulations that suggested Channel 1 stellar photometry may be significantly improved by modeling the nonuniform RQE within each pixel, which, when not taken into account in aperture photometry, causes the derived flux to vary according to where the centroid falls within a single pixel (the pixel-phase effect). We analyze archival observations of calibration stars and compare the precision of stellar aperture photometry, with the recommended 1-dimensional and a new 2-dimensional pixel-phase aperture-flux correction, and MATPHOT-based PSF-fitting photometry which accounts for the observed loss of stellar flux due to the nonuniform intrapixel quantum efficiency. We show how the precision of aperture photometry of bright isolated stars corrected with the new 2-dimensional aperture-flux correction function can yield photometry that is almost as precise as that produced by PSF-fitting procedures. This timely research effort is intended to enhance the science return not only of observations already in Spitzer data archive but also those that would be made during the Spitzer Warm Mission.
机译:目前正在计划使用Spitzer太空望远镜进行可能的低温后飞行任务。仅红外阵列摄像机(IRAC)的通道1和2(3.6和4.5μm)可以使用;在詹姆斯·韦伯太空望远镜发射之前,它们将具有3至5微米的无与伦比的灵敏度。 Mighell在SPIE Orlando上介绍了他的NASA资助的用于精确恒星光度学和天体测量的MATPHOT算法,并介绍了基于MATPHOT的模拟,该结果表明,通过对每个像素内的非均匀RQE建模可以显着改善通道1恒星光度测量。在孔径光度法中,会导致导出的通量根据质心在单个像素内的位置而变化(像素相位效应)。我们分析了校准星的档案观测结果,并比较了推荐的一维和新的二维像素相孔径通量校正和基于MATPHOT的PSF拟合光度法对恒星光度光度法的精度,从而解决了观测到的损失由于不均匀的像素内量子效率导致恒星通量的变化。我们展示了用新的二维孔径通量校正功能校正后的明亮孤立星的孔径光度测量的精度如何能够产生与PSF拟合程序所产生的精度几乎一样的光度测量。这项及时的研究工作不仅旨在提高Spitzer数据档案库中已经存在的观测值的科学回报,而且还可以提高Spitzer暖任务期间的观测结果的科学回报。

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