论文标题

校准过渡边缘传感器(TES)BOLOMETER阵列,并应用于类

Calibration of Transition-edge Sensor (TES) Bolometer Arrays with Application to CLASS

论文作者

Appel, John W., Bennett, Charles L., Brewer, Michael K., Bustos, Ricardo, Chan, Manwei, Chuss, David T., Cleary, Joseph, Couto, Jullianna D., Dahal, Sumit, Datta, Rahul, Denis, Kevin, Eimer, Joseph, Essinger-Hileman, Thomas, Harrington, Kathleen, Iuliano, Jeffrey, Li, Yunyang, Marriage, Tobias A., Núñez, Carolina, Osumi, Keisuke, Padilla, Ivan L., Petroff, Matthew A., Rostem, Karwan, Valle, Deniz A. N., Watts, Duncan J., Weiland, Janet L., Wollack, Edward J., Xu, Zhilei

论文摘要

当前和未来的宇宙微波背景(CMB)实验侧面千禧一阵阵列(TES)侧螺测力仪需要准确且可靠的增益校准方法。我们简化并重构标准TES模型,将检测器响应性校准和光学时间常数与所测量的TES电流$ i $和所应用的偏置电流$ i _ {\ MathRM {b}} $直接相关联。为宇宙学大型角度测量师(类)TES BOLOMER阵列开发的校准方法取决于电流与电压($ i $ - $ V $)在CMB观察之前每天获得的测量。通过binning Q频段(40GHz)$ i $ - $ V $通过光载量测量,我们发现垃圾箱内的增益校准中值标准误差为0.3%。我们通过使用月球作为光度标准来测试此“ $ i $ - $ - $ V $ bin”检测器校准方法的准确性。共享相同馈送的检测器对之间测得的月球幅度的比率表明TES校准误差为0.5%。我们还发现,对于Q频段TES阵列,仅根据应用的TES偏差电流来校准单个检测器的响应,准确地纠正了TES增益的变化,但引入了TES校准从数据计数到功率单元的偏差。由于TES当前偏置值在每个观察之前都设置和记录,因此这种校准方法始终可以应用于RAW TES数据,并且不受$ i $ - $ -V $数据质量或处理错误的约束。

The current and future cosmic microwave background (CMB) experiments fielding kilo-pixel arrays of transition-edge sensor (TES) bolometers require accurate and robust gain calibration methods. We simplify and refactor the standard TES model to directly relate the detector responsivity calibration and optical time constant to the measured TES current $I$ and the applied bias current $I_{\mathrm{b}}$. The calibration method developed for the Cosmology Large Angular Scale Surveyor (CLASS) TES bolometer arrays relies on current versus voltage ($I$-$V$) measurements acquired daily prior to CMB observations. By binning Q-band (40GHz) $I$-$V$ measurements by optical loading, we find that the gain calibration median standard error within a bin is 0.3%. We test the accuracy of this "$I$-$V$ bin" detector calibration method by using the Moon as a photometric standard. The ratio of measured Moon amplitudes between detector pairs sharing the same feedhorn indicates a TES calibration error of 0.5%. We also find that for the CLASS Q-band TES array, calibrating the response of individual detectors based solely on the applied TES bias current accurately corrects TES gain variations across time but introduces a bias in the TES calibration from data counts to power units. Since the TES current bias value is set and recorded before every observation, this calibration method can always be applied to raw TES data and is not subject to $I$-$V$ data quality or processing errors.

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