English

Euclid preparation: XVI. Exploring the ultra low-surface brightness Universe with Euclid/VIS

Instrumentation and Methods for Astrophysics 2022-01-19 v1 Astrophysics of Galaxies

Abstract

While Euclid is an ESA mission specifically designed to investigate the nature of Dark Energy and Dark Matter, the planned unprecedented combination of survey area (15000\sim15\,000 deg2^2), spatial resolution, low sky-background, and depth also make Euclid an excellent space observatory for the study of the low surface brightness Universe. Scientific exploitation of the extended low surface brightness structures requires dedicated calibration procedures yet to be tested. We investigate the capabilities of Euclid to detect extended low surface brightness structure by identifying and quantifying sky background sources and stray-light contamination. We test the feasibility of generating sky flat-fields to reduce large-scale residual gradients in order to reveal the extended emission of galaxies observed in the Euclid Survey. We simulate a realistic set of Euclid/VIS observations, taking into account both instrumental and astronomical sources of contamination, including cosmic rays, stray-light, zodiacal light, ISM, and the CIB, while simulating the effects of the presence of background sources in the FOV. We demonstrate that a combination of calibration lamps, sky flats and self-calibration would enable recovery of emission at a limiting surface brightness magnitude of μ=29.50.27+0.08\mu=29.5^{+0.08}_{-0.27} mag arcsec2^{-2} (3σ3\sigma, 10×1010\times10 arcsec2^2) in the Wide Survey, reaching regions 2 magnitudes deeper in the Deep Surveys. Euclid/VIS has the potential to be an excellent low surface brightness observatory. Covering the gap between pixel-to-pixel calibration lamp flats and self-calibration observations for large scales, the application of sky flat-fielding will enhance the sensitivity of the VIS detector at scales of larger than 1 degree, up to the size of the FOV, enabling Euclid to detect extended surface brightness structures below μ=31\mu=31 mag arcsec2^{-2} and beyond.

Keywords

Cite

@article{arxiv.2108.10321,
  title  = {Euclid preparation: XVI. Exploring the ultra low-surface brightness Universe with Euclid/VIS},
  author = {A. S. Borlaff and P. Gómez-Alvarez and B. Altieri and P. M. Marcum and R. Vavrek and R. Laureijs and R. Kohley and F. Buitrago and J. C. Cuillandre and P. A. Duc and L. M. Gaspar Venancio and A. Amara and S. Andreon and N. Auricchio and R. Azzollini and C. Baccigalupi and A. Balaguera-Antolínez and M. Baldi and S. Bardelli and R. Bender and A. Biviano and C. Bodendorf and D. Bonino and E. Bozzo and E. Branchini and M. Brescia and J. Brinchmann and C. Burigana and R. Cabanac and S. Camera and G. P. Candini and V. Capobianco and A. Cappi and C. Carbone and J. Carretero and C. S. Carvalho and S. Casas and F. J. Castander and M. Castellano and G. Castignani and S. Cavuoti and A. Cimatti and R. Cledassou and C. Colodro-Conde and G. Congedo and C. J. Conselice and L. Conversi and Y. Copin and L. Corcione and J. Coupon and H. M. Courtois and M. Cropper and A. Da Silva and H. Degaudenzi and D. Di Ferdinando and M. Douspis and F. Dubath and C. A. J. Duncan and X. Dupac and S. Dusini and A. Ealet and M. Fabricius and M. Farina and S. Farrens and P. G. Ferreira and S. Ferriol and F. Finelli and P. Flose-Reimberg and P. Fosalba and M. Frailis and E. Franceschi and M. Fumana and S. Galeotta and K. Ganga and B. Garilli and B. Gillis and C. Giocoli and G. Gozaliasl and J. Graciá-Carpio and A. Grazian and F. Grupp and S. V. H. Haugan and W. Holmes and F. Hormuth and K. Jahnke and E. Keihanen and S. Kermiche and A. Kiessling and M. Kilbinger and C. C. Kirkpatrick and T. Kitching and J. H. Knapen and B. Kubik and M. Kümmel and M. Kunz and H. Kurki-Suonio and P. Liebing and S. Ligori and P. B. Lilje and V. Lindholm and I. Lloro and G. Mainetti and D. Maino and O. Mansutti and O. Marggraf and K. Markovic and M. Martinelli and N. Martinet and D. Martínez-Delgado and F. Marulli and R. Massey and M. Maturi and S. Maurogordato and E. Medinaceli and S. Mei and M. Meneghetti and E. Merlin and R. B. Metcalf and G. Meylan and M. Moresco and G. Morgante and L. Moscardini and E. Munari and R. Nakajima and C. Neissner and S. M. Niemi and J. W. Nightingale and A. Nucita and C. Padilla and S. Paltani and F. Pasian and L. Patrizii and K. Pedersen and W. J. Percival and V. Pettorino and S. Pires and M. Poncet and L. Popa and D. Potter and L. Pozzetti and F. Raison and R. Rebolo and A. Renzi and J. Rhodes and G. Riccio and E. Romelli and M. Roncarelli and C. Rosset and E. Rossetti and R. Saglia and A. G. Sánchez and D. Sapone and M. Sauvage and P. Schneider and V. Scottez and A. Secroun and G. Seidel and S. Serrano and C. Sirignano and G. Sirri and J. Skottfelt and L. Stanco and J. L. Starck and F. Sureau and P. Tallada-Crespí and A. N. Taylor and M. Tenti and I. Tereno and R. Teyssier and R. Toledo-Moreo and F. Torradeflot and I. Tutusaus and E. A. Valentijn and L. Valenziano and J. Valiviita and T. Vassallo and M. Viel and Y. Wang and J. Weller and L. Whittaker and A. Zacchei and G. Zamorani and E. Zucca},
  journal= {arXiv preprint arXiv:2108.10321},
  year   = {2022}
}

Comments

23 pages, 13 figures, Euclid Consortium Key Project, accepted for publication in Astronomy & Astrophysics