arXiv · 1808.00623
A Highly Linear Calibration Metric for TES X-ray Microcalorimeters
Abstract
Transition-edge sensor X-ray microcalorimeters are usually calibrated empirically, as the most widely-used calibration metric, optimal filtered pulse height (OFPH), in general has an unknown dependance on photon energy, $E_γ$. Because the calibration function can only be measured at specific points where photons of a known energy can be produced, this unknown dependence of OFPH on $E_γ$ leads to calibration errors and the need for time-intensive calibration measurements and analysis. A calibration metric that is nearly linear as a function of $E_γ$ could help alleviate these problems. In this work, we assess the linearity of a physically motivated calibration metric, $E_{Joule}$. We measure calibration pulses in the range 4.5 keV$<$$E_γ$$<$9.6 keV with detectors optimized for 6 keV photons to compare the linearity properties of $E_{Joule}$ to OFPH. In these test data sets, we find that $E_{Joule}$ fits a linear function an order of magnitude better than OFPH. Furthermore, calibration functions using $E_{J}$, an optimized version of $E_{Joule}$, are linear within the 2-3 eV noise of the data.
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C. G. Pappas, J. W. Fowler, D. A. Bennett, W. B. Doriese, Y. I. Joe, K. M. Morgan, G. C. O'Neil, J. N. Ullom, D. S. Swetz. 2018-08-02. A Highly Linear Calibration Metric for TES X-ray Microcalorimeters. https://doi.org/10.1007/s10909-018-1999-8
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