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The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements

Publication ,  Journal Article
Plazas, AA; Shapiro, C; Kannawadi, A; Mandelbaum, R; Rhodes, J; Smith, R
Published in: Publications of the Astronomical Society of the Pacific
October 1, 2016

Weak gravitational lensing (WL) is one of the most powerful techniques to learn about the dark sector of the universe. To extract the WL signal from astronomical observations, galaxy shapes must be measured and corrected for the point-spread function (PSF) of the imaging system with extreme accuracy. Future WL missions—such as NASA’s Wide-Field Infrared Survey Telescope (WFIRST)—will use a family of hybrid near-infrared complementary metal-oxide-semiconductor detectors (HAWAII-4RG) that are untested for accurate WL measurements. Like all image sensors, these devices are subject to conversion gain nonlinearities (voltage response to collected photo-charge) that bias the shape and size of bright objects such as reference stars that are used in PSF determination. We study this type of detector nonlinearity (NL) and show how to derive requirements on it from WFIRST PSF size and ellipticity requirements. We simulate the PSF optical profiles expected for WFIRST and measure the fractional error in the PSF size (ΔR/R) and the absolute error in the PSF ellipticity (Δe) as a function of star magnitude and the NL model. For our nominal NL model (a quadratic correction),wefind that, uncalibrated, NL can induce an error of ΔR/R=1×10−2 and Δe2=1.75×10−3 in the H158 bandpass for the brightest unsaturated stars in WFIRST. In addition, our simulations show that to limit the bias of ΔR/R and Δe in the H158 band to ∼10% of the estimated WFIRST error budget, the quadratic NL model parameter β must be calibrated to ∼1% and ∼2.4%, respectively. We present a fitting formula that can be used to estimate WFIRST detector NL requirements once a true PSF error budget is established.

Duke Scholars

Published In

Publications of the Astronomical Society of the Pacific

DOI

ISSN

0004-6280

Publication Date

October 1, 2016

Volume

128

Issue

968

Related Subject Headings

  • Astronomy & Astrophysics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 0201 Astronomical and Space Sciences
 

Citation

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Plazas, A. A., Shapiro, C., Kannawadi, A., Mandelbaum, R., Rhodes, J., & Smith, R. (2016). The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements. Publications of the Astronomical Society of the Pacific, 128(968). https://doi.org/10.1088/1538-3873/128/968/104001
Plazas, A. A., C. Shapiro, A. Kannawadi, R. Mandelbaum, J. Rhodes, and R. Smith. “The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements.” Publications of the Astronomical Society of the Pacific 128, no. 968 (October 1, 2016). https://doi.org/10.1088/1538-3873/128/968/104001.
Plazas AA, Shapiro C, Kannawadi A, Mandelbaum R, Rhodes J, Smith R. The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements. Publications of the Astronomical Society of the Pacific. 2016 Oct 1;128(968).
Plazas, A. A., et al. “The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements.” Publications of the Astronomical Society of the Pacific, vol. 128, no. 968, Oct. 2016. Scopus, doi:10.1088/1538-3873/128/968/104001.
Plazas AA, Shapiro C, Kannawadi A, Mandelbaum R, Rhodes J, Smith R. The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements. Publications of the Astronomical Society of the Pacific. 2016 Oct 1;128(968).
Journal cover image

Published In

Publications of the Astronomical Society of the Pacific

DOI

ISSN

0004-6280

Publication Date

October 1, 2016

Volume

128

Issue

968

Related Subject Headings

  • Astronomy & Astrophysics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 0201 Astronomical and Space Sciences