This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Research initiated as part of a bachelor's thesis in physics at the Universitat Autònoma de Barcelona (UAB) has culminated in a new analytical description of the muon-based calibration of dual-mirror Cherenkov telescopes. The work solves a problem that had remained open for more than 30 years because of the geometric complexity of these optical systems: determining precisely how much Cherenkov light produced by a muon reaches the camera, taking into account the shadows cast by the secondary mirror and the camera itself.
The study is authored by Markus Gaug, a lecturer in the Department of Physics at the UAB and researcher at the CERES-IEEC; Víctor Giráldez-Segalàs, a physics graduate from the UAB; and doctoral student Fiona Redmen. The work is published in The Astrophysical Journal Supplement Series. Cherenkov telescopes detect the brief flashes of light produced in the atmosphere by particle cascades originating from gamma rays and cosmic rays.
Among these particles are muons that, when traveling through the atmosphere at a speed exceeding the speed of light in air, emit Cherenkov radiation. When a muon passes close to a telescope, this radiation produces a characteristic ring-shaped image on the camera. Since the amount of light emitted can be calculated with great precision, these rings constitute a natural calibration source continuously available during observations.
By comparing the expected light with the light actually detected by the camera, it is possible to determine the overall efficiency of the optical and detection system and track its evolution over time. This continuous calibration is particularly important because the large CTAO telescopes are not protected by domes—unlike conventional optical telescopes—but are instead exposed to the elements. Furthermore, precise calibration is essential for accurately reconstructing gamma-ray energy and controlling systematic uncertainties.
The research originated in the bachelor's thesis conducted by Giráldez-Segalàs during his physics degree at the UAB, under the supervision of Gaug. The objective was to extend the analytical muon calibration methods developed for conventional single-mirror telescopes to the future dual-mirror telescopes of the CTAO. In a double-mirror telescope, the geometry is considerably more complex: The secondary mirror, its supports and light deflectors, the camera and the central hole of the primary mirror can intercept part of the Cherenkov radiation.
These shadows also depend on the muon's inclination and trajectory and vary along the observed ring. Having an analytical solution will save the CTAO from having to resort to continuous and costly simulations in terms of computing time. The new formalism allows for the explicit calculation of the fraction of Cherenkov light blocked by the various telescope components for each muon trajectory.
Extract — continue reading at the source.