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Euclid preparation: XXX. Performance assessment of the NISP red grism through spectroscopic simulations for the wide and deep surveys

  • L. Gabarra
  • , C. Mancini
  • , L. Rodriguez Muñoz
  • , G. Rodighiero
  • , C. Sirignano
  • , M. Scodeggio
  • , M. Talia
  • , S. Dusini
  • , W. Gillard
  • , B. R. Granett
  • , E. Maiorano
  • , M. Moresco
  • , L. Paganin
  • , E. Palazzi
  • , L. Pozzetti
  • , A. Renzi
  • , E. Rossetti
  • , D. Vergani
  • , V. Allevato
  • , L. Bisigello
  • G. Castignani, B. De Caro, M. Fumana, K. Ganga, B. Garilli, M. Hirschmann, F. La Franca, C. Laigle, F. Passalacqua, M. Schirmer, L. Stanco, A. Troja, L. Y.A. Yung, G. Zamorani, J. Zoubian, S. Anselmi, F. Oppizzi, G. Verza, N. Aghanim, A. Amara, N. Auricchio, M. Baldi, R. Bender, C. Bodendorf, D. Bonino, E. Branchini, M. Brescia, J. Brinchmann, S. Camera, V. Capobianco, C. Carbone, J. Carretero, F. J. Castander, M. Castellano, S. Cavuoti, R. Cledassou, G. Congedo, C. J. Conselice, L. Conversi, Y. Copin, L. Corcione, A. Costille, F. Courbin, A. Da Silva, H. Degaudenzi, J. Dinis, F. Dubath, X. Dupac, A. Ealet, S. Farrens, S. Ferriol, M. Frailis, E. Franceschi, P. Franzetti, S. Galeotta, B. Gillis, C. Giocoli, A. Grazian, F. Grupp, L. Guzzo, W. Holmes, A. Hornstrup, P. Hudelot, K. Jahnke, M. Kümmel, S. Kermiche, A. Kiessling, M. Kilbinger, T. Kitching, R. Kohley, B. Kubik, M. Kunz, H. Kurki-Suonio, S. Ligori, P. B. Lilje, I. Lloro, O. Mansutti, O. Marggraf, K. Markovic, F. Marulli, R. Massey, S. Maurogordato, S. Mei, M. Meneghetti, G. Meylan, L. Moscardini, E. Munari, R. C. Nichol, S. M. Niemi, J. Nightingale, C. Padilla, S. Paltani, F. Pasian, K. Pedersen, W. J. Percival, V. Pettorino, G. Polenta, M. Poncet, F. Raison, J. Rhodes, G. Riccio, E. Romelli, M. Roncarelli, R. Saglia, D. Sapone, P. Schneider, A. Secroun, G. Seidel, S. Serrano, G. Sirri, C. Surace, P. Tallada-Crespí, D. Tavagnacco, A. N. Taylor, I. Tereno, R. Toledo-Moreo, F. Torradeflot, M. Trifoglio, I. Tutusaus, E. A. Valentijn, L. Valenziano, T. Vassallo, Y. Wang, J. Weller, A. Zacchei, S. Andreon, H. Aussel, S. Bardelli, M. Bolzonella, A. Boucaud, E. Bozzo, C. Colodro-Conde, D. Di Ferdinando, M. Farina, J. Graciá-Carpio, E. Keihänen, V. Lindholm, D. Maino, N. Mauri, Y. Mellier, C. Neissner, V. Scottez, M. Tenti, E. Zucca, Y. Akrami, C. Baccigalupi, M. Ballardini, F. Bernardeau, A. Biviano, A. S. Borlaff, E. Borsato, C. Burigana, R. Cabanac, A. Cappi, C. S. Carvalho, S. Casas, T. Castro, K. Chambers, A. R. Cooray, J. Coupon, H. M. Courtois, S. Davini, S. De La Torre, G. De Lucia, G. Desprez, H. Dole, J. A. Escartin, S. Escoffier, I. Ferrero, F. Finelli, S. Fotopoulou, J. Garcia-Bellido, K. George, F. Giacomini, G. Gozaliasl, H. Hildebrandt, I. Hook, O. Ilbert, A. Jimenez Muñoz, J. J.E. Kajava, V. Kansal, C. C. Kirkpatrick, L. Legrand, A. Loureiro, J. MacIas-Perez, M. Magliocchetti, G. Mainetti, R. Maoli, S. Marcin, M. Martinelli, N. Martinet, C. J.A.P. Martins, S. Matthew, L. Maurin, R. B. Metcalf, G. Morgante, S. Nadathur, A. A. Nucita, L. Patrizii, V. Popa, C. Porciani, D. Potter, M. Pöntinen, A. G. Sánchez, Z. Sakr, A. Schneider, E. Sefusatti, M. Sereno, A. Shulevski, A. Spurio Mancini, J. Stadel, J. Steinwagner, R. Teyssier, J. Valiviita, A. Veropalumbo, M. Viel, I. A. Zinchenko
  • University of Padova
  • INFN
  • INAF Istituto di Astrofisica Spaziale e Fisica Cosmica, Milan
  • INAF Osservatorio Astronomico di Padova
  • University of Bologna
  • INAF Istituto di Astrofisica Spaziale e Fisica Cosmica, Bologna
  • Aix-Marseille Université
  • University of Genoa
  • Sezione di Genova
  • Osservatorio Astronomico di Capodimonte
  • Astroparticule and Cosmol APC
  • ENAC-IIC-GEL
  • INAF-Trieste
  • University Roma Tre
  • Institut d’Astrophysique de Paris
  • Max-Planck-Institut für Astronomie
  • NASA Goddard Space Flight Center
  • Institut d'Astrophysique Spatiale
  • University of Portsmouth
  • INFN Sezione di Bologna
  • Max Planck Institut für Extraterrestrische Physik
  • Universität München
  • Istituto di Astrofisica e Planetologia Spaziali (IAPS)
  • Sezione di Roma
  • University of Naples Federico II
  • Ipatimup Diagnósticos
  • University of Turin
  • INFN Sezione di Torino
  • The Barcelona Institute of Science and Technology
  • Campus Uab
  • Institut d’Estudis Espacials de Catalunya (IEEC)
  • Campus UAB
  • Osservatorio Astronomico di Roma
  • INFN Sezione di Napoli
  • Centre National d'études Spatiales
  • Université Paris-Sud
  • University of Edinburgh, Institute for Astronomy
  • Jodrell Bank Centre for Astrophysics
  • ESAC campus
  • ESRIN - ESA Centre for Earth Observation
  • IGFL, Université de Lyon, Université Lyon 1
  • LAM
  • Faculdade de Ciências, Universidade de Lisboa
  • Université de Genève
  • CEA/UVSQ/CNRS
  • University of Milano
  • Sezione INFN di Milano
  • California Institute of Technology
  • Technical University of Denmark
  • Cosmic Dawn Center
  • UCL Mullard Space Science Laboratory
  • University of Geneva
  • University of Helsinki
  • University of Oslo
  • ASTRON
  • University Bonn
  • Durham University
  • Université Côte d’Azur
  • University of Surrey
  • ESTEC - European Space Research and Technology Centre
  • Aarhus University
  • University of Waterloo
  • Perimeter Institute for Theoretical Physics
  • Science and Research Directorate
  • Facultad de Ciencias Físicas y Matemáticas de la Universidad de Chile
  • Centro de Investigaciones Energéticas Medioambientales y Tecnológicas (CIEMAT)
  • Universidad Politécnica de Cartagena
  • IRAP/CNRS
  • University of Groningen
  • California Institute of Technology
  • Ifpu Institute for Fundamental Physics of the Universe
  • Université Paris-Saclay
  • Instituto de Astrofisica de Canarias
  • Universite Paris-Saclay
  • Junia
  • Instituto de Fisica Teorica
  • Case Western Reserve University
  • Center for Atomic-scale Materials Physics (CAMP)
  • Sorbonne Univ.
  • Imperial College London
  • International School of Advanced Studies
  • INFN Sezione di Trieste
  • University of Ferrara
  • Sezione INFN di Ferrara
  • NASA Ames Research Center
  • RWTH Aachen University
  • University of Hawaii
  • Long Beach VA and University of California
  • Saint Mary's University
  • University of Bristol
  • Ruhr-University Bochum
  • Lancaster University
  • LTHE (UMR 5564 CNRS/IRD/Université de Grenoble)
  • University of Turku
  • University of Rome
  • University of Applied Sciences and Arts of Northwestern Switzerland
  • University of Salento
  • Sezione di Lecce
  • INAF-Sezione di Lecce
  • Institute of Space Science
  • University of Zurich
  • Heidelberg University
  • Université St Joseph
  • University of Leiden
  • Princeton University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

11 Citations (Scopus)

Résumé

This work focusses on the pilot run of a simulation campaign aimed at investigating the spectroscopic capabilities of the Euclid Near-Infrared Spectrometer and Photometer (NISP), in terms of continuum and emission line detection in the context of galaxy evolutionary studies. To this purpose, we constructed, emulated, and analysed the spectra of 4992 star-forming galaxies at 0:3 ≥ z ≥ 2:5 using the NISP pixel-level simulator. We built the spectral library starting from public multi-wavelength galaxy catalogues, with value-added information on spectral energy distribution (SED) fitting results, and stellar population templates from Bruzual & Charlot (2003, MNRAS, 344, 1000). Rest-frame optical and near-IR nebular emission lines were included using empirical and theoretical relations. Dust attenuation was treated using the Calzetti extinction law accounting for the differential attenuation in line-emitting regions with respect to the stellar continuum. The NISP simulator was configured including instrumental and astrophysical sources of noise such as the dark current, read-out noise, zodiacal background, and out-of-field stray light. In this preliminary study, we avoided contamination due to the overlap of the slitless spectra. For this purpose, we located the galaxies on a grid and simulated only the first order spectra.We inferred the 3.5δ NISP red grism spectroscopic detection limit of the continuum measured in the H band for star-forming galaxies with a median disk half-light radius of 0: 004 at magnitude H = 19:5 = 0:2ABmag for the Euclid Wide Survey and at H = 20:8 = 0:6ABmag for the Euclid Deep Survey. We found a very good agreement with the red grism emission line detection limit requirement for the Wide and Deep surveys. We characterised the effect of the galaxy shape on the detection capability of the red grism and highlighted the degradation of the quality of the extracted spectra as the disk size increased. In particular, we found that the extracted emission line signal-to-noise ratio (S/N) drops by 45% when the disk size ranges from 0: 0025 to 100. These trends lead to a correlation between the emission line S/N and the stellar mass of the galaxy and we demonstrate the effect in a stacking analysis unveiling emission lines otherwise too faint to detect.

langue originaleAnglais
Numéro d'articleA34
journalAstronomy and Astrophysics
Volume676
Les DOIs
étatPublié - 1 août 2023
Modification externeOui

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