English

A Highly Linear Calibration Metric for TES X-ray Microcalorimeters

Instrumentation and Detectors 2018-08-03 v1

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, EγE_{\gamma}. 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 EγE_{\gamma} 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 EγE_{\gamma} could help alleviate these problems. In this work, we assess the linearity of a physically motivated calibration metric, EJouleE_{Joule}. We measure calibration pulses in the range 4.5 keV<<EγE_{\gamma}<<9.6 keV with detectors optimized for 6 keV photons to compare the linearity properties of EJouleE_{Joule} to OFPH. In these test data sets, we find that EJouleE_{Joule} fits a linear function an order of magnitude better than OFPH. Furthermore, calibration functions using EJE_{J}, an optimized version of EJouleE_{Joule}, are linear within the 2-3 eV noise of the data.

Keywords

Cite

@article{arxiv.1808.00623,
  title  = {A Highly Linear Calibration Metric for TES X-ray Microcalorimeters},
  author = {C. G. Pappas and J. W. Fowler and D. A. Bennett and W. B. Doriese and Y. I. Joe and K. M. Morgan and G. C. O'Neil and J. N. Ullom and D. S. Swetz},
  journal= {arXiv preprint arXiv:1808.00623},
  year   = {2018}
}
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