Confocal off-axis optical system with freeform mirror, application to Photon Simulator (PhoSim)

  • Kim, Dohoon (Department of Astronomy & Space Science, Kyung HeeUniversity) ;
  • Lee, Sunwoo (Korea Basic Science Institute) ;
  • Han, Jimin (School of Space Research and Institute of Natural Science, Kyung HeeUniversity) ;
  • Park, Woojin (Korea Astronomy and Space Science Institute) ;
  • Pak, Soojong (Department of Astronomy & Space Science, Kyung HeeUniversity) ;
  • Yoo, Jaewon (Korea Astronomy and Space Science Institute) ;
  • Ko, Jongwan (Korea Astronomy and Space Science Institute) ;
  • Lee, Dae-Hee (Korea Astronomy and Space Science Institute) ;
  • Chang, Seunghyuk (Center for Integrated Smart Sensors, Korea Advanced Institute of Science and Technology (KAIST)) ;
  • Kim, Geon-Hee (Department of Mechanical and Material Convergence Systems Engineering., Hanbat National University) ;
  • Valls-Gabaud, David (LERMA, CNRS, PSL, Observatoirede Paris) ;
  • Kim, Daewook (Department of Astronomy and Steward Observatory, University of Arizona)
  • 발행 : 2021.10.13

초록

MESSIER is a science satellite project to observe the Low Surface Brightness (LSB) sky at UV and optical wavelengths. The wide-field, optical system of MESSIER is optimized minimizing optical aberrations through the use of a Linear Astigmatism Free - Three Mirror System (LAF-TMS) combined with freeform mirrors. One of the key factors in observations of the LSB is the shape and spatial variability of the Point Spread Function (PSF) produced by scatterings and diffraction effects within the optical system and beyond (baffle). To assess the various factors affecting the PSF in this design, we use PhoSim, the Photon simulator, which is a fast photon Monte Carlo code designed to include all these effects, and also atmospheric effects (for ground-based telescopes) and phenomena occurring inside of the sensor. PhoSim provides very realistic simulations results and is suitable for simulations of very weak signals. Before the application to the MESSIER optics system, PhoSim had not been validated for confocal off-axis reflective optics (LAF-TMS). As a verification study for the LAF-TMS design, we apply Phosim sequentially. First, we use a single parabolic mirror system and compare the PSF results of the central field with the results from Zemax, CODE V, and the theoretical Airy pattern. We then test a confocal off-axis Cassegrain system and check PhoSim through cross-validation with CODE V. At the same time, we describe the shapes of the freeform mirrors with XY and Zernike polynomials. Finally, we will analyze the LAF-TMS design for the MESSIER optical system.

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