论文标题

近红外探测器的效果更明亮-III。平面相关性的傅里叶域处理和对wfirst的应用

Brighter-fatter effect in near-infrared detectors -- III. Fourier-domain treatment of flat field correlations and application to WFIRST

论文作者

Freudenburg, Jenna K. C., Givans, Jahmour J., Choi, Ami, Hirata, Christopher M., Bennett, Chris, Cheung, Stephanie, Cillis, Analia, Cottingham, Dave, Hill, Robert J., Mah, Jon, Meier, Lane

论文摘要

弱重力镜头已成为宇宙结构生长的主要探针。但是,剪切信号非常小,准确的测量取决于我们了解非理想仪器效应如何影响天文图像的能力。 WFIRST将飞行一个焦平面,该焦平面在红外探测器阵列附近包含18个Teledyne H4RG-10,该量阵列在先前的弱透镜观测值中提出了不同的仪器校准挑战。先前的工作表明,平面图像的相关函数是解开线性和非线性像素间电容(IPC)和更明亮的效果(BFE)的有效工具。在这里,我们提出了对平面相关性的傅立叶域处理,这使我们能够将先前的形式主义扩展到IPC,BFE和经典非线性的所有订单。我们表明,通过使用这种形式主义,在纸张I中进行了模拟平面分析的偏见大大降低了。然后,我们将此更新的形式主义应用于来自三个WFIRST候选探测器的平面数据,并探索分析中变化的鲁棒性。我们发现BFE都存在于所有三个检测器中,并且其对平面相关性的贡献占非线性IPC的主导。 BFE的大小使像素的有效面积增加了$(3.54 \ pm0.03)\ times 10^{ - 7} $,用于存放在相邻像素中的每个电子。我们将IPC图从平面自相关测量结果与从单像素复位方法获得的图进行比较,并找到0.113%的中位数差异。在进一步诊断出这种差异之后,我们将其归因于垂直尾随像素效应的附加来源,并建议进一步的工作以开发该效果的模型。这些结果代表了WFIRST探测器中非理想效应校准的重要一步。

Weak gravitational lensing has emerged as a leading probe of the growth of cosmic structure. However, the shear signal is very small and accurate measurement depends critically on our ability to understand how non-ideal instrumental effects affect astronomical images. WFIRST will fly a focal plane containing 18 Teledyne H4RG-10 near infrared detector arrays, which present different instrument calibration challenges from previous weak lensing observations. Previous work has shown that correlation functions of flat field images are effective tools for disentangling linear and non-linear inter-pixel capacitance (IPC) and the brighter-fatter effect (BFE). Here we present a Fourier-domain treatment of the flat field correlations, which allows us to expand the previous formalism to all orders in IPC, BFE, and classical non-linearity. We show that biases in simulated flat field analyses in Paper I are greatly reduced through the use of this formalism. We then apply this updated formalism to flat field data from three WFIRST flight candidate detectors, and explore the robustness to variations in the analysis. We find that the BFE is present in all three detectors, and that its contribution to the flat field correlations dominates over the non-linear IPC. The magnitude of the BFE is such that the effective area of a pixel is increased by $(3.54\pm0.03)\times 10^{-7}$ for every electron deposited in a neighboring pixel. We compare IPC maps from flat field autocorrelation measurements to those obtained from the single pixel reset method and find a median difference of 0.113%. After further diagnosis of this difference, we ascribe it largely to an additional source of cross-talk, the vertical trailing pixel effect, and recommend further work to develop a model for this effect. These results represent a significant step toward calibration of the non-ideal effects in WFIRST detectors.

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