Curving X-ray detectors for astrophysics applications
Eric D. Miller, James A. Gregory, Keith Warner, Beverly LaMarr, Gregory Prigozhin, Marshall W. Bautz, Harry R. Clark, Michael J. Cooper, Kevan A. Donlon, Catherine E. Grant, WeiLin Hu, Mallory A. Jensen, Jill Juneau, Renee D. Lambert, Christopher W. Leitz, David Volfson, Douglas J. Young
Abstract
Next-generation X-ray optics will revolutionize high-energy astrophysics, yet they present several challenges to design a complementary focal plane. In particular, the focal surface is curved, requiring many small, flat sensors to achieve a large field. We present work building on MIT Lincoln Laboratory technology to curve the sensor itself, improving image quality and reducing complexity. Applying this technology to back-illuminated, large-format CCDs having well-characterized X-ray response, we describe the process and report success curving functional BI CCDs to a 2.5-m radius of curvature, achieving RMS curvature deviations less than 1 micron. We confirm that there is no appreciable increase in dark current and that the spectroscopic performance across the 0.3-6 keV band remains excellent. These results demonstrate that curved, large-format X-ray sensors are realizable, and the process can be extended to silicon detectors with other architectures, including active pixel sensors.
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