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    • Dpto. Física de la Materia Condensada, Cristalografía y Mineralogía
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    Por favor, use este identificador para citar o enlazar este ítem:http://uvadoc.uva.es/handle/10324/46259

    Título
    SuperCam Calibration Targets: Design and Development
    Autor
    Manrique Martínez, José AntonioAutoridad UVA Orcid
    López Reyes, Guillermo EduardoAutoridad UVA Orcid
    Cousin, Agnes
    Rull Pérez, FernandoAutoridad UVA
    Maurice, Sylvestre
    Wiens, Roger C.
    Madsen, Morten
    Madariaga Mota, Juan Manuel
    Gasnault, Olivier
    Aramendia, Julene
    Arana, Gorka
    Beck, Pierre
    Bernard, Sylvain
    Bernardi, Pernelle
    Bernt, M. H.
    Berrocal, Alicia
    Beyssac, Olivier
    Cais, Philippe
    Castro, C.
    Castro, K.
    Clegg, Sam
    Cloutis, Edward
    Dromart, Gilles
    Drouet, C.
    Dubois, Bruno
    Escribano, D.
    Fabre, Cecile
    Fernandez, A.
    Forni, Olivier
    García Baonza, Valentín
    Gontijo, Ivair
    Johnson, Jeffrey R.
    Laserna, Javier
    Lasue, Jeremie
    Madsen, Soren
    Mateo Martí, Eva
    Medina García, JesúsAutoridad UVA
    Meslin, Pierre-Yves
    Montagnac, Gilles
    Moral Inza, Andoni Gaizka
    Moros, J.
    Ollila, Ann M.
    Ortega, C.
    Prieto-Ballesteros, O.
    Reess, J. M.
    Robinson, Scott H.
    Rodriguez, J.
    Sáiz, Jesús
    Sanz Arranz, José AurelioAutoridad UVA Orcid
    Sard, I.
    Sautter, Violaine
    Sobron, Pablo
    Toplis, Michael J.
    Veneranda ., MarcoAutoridad UVA Orcid
    Año del Documento
    2020
    Editorial
    Springer
    Documento Fuente
    Space Science Reviews, Noviembre 2020, Vol. 216 (8), n. 138
    Abstract
    SuperCam is a highly integrated remote-sensing instrumental suite for NASA’s Mars 2020 mission. It consists of a co-aligned combination of Laser-Induced Breakdown Spectroscopy (LIBS), Time-Resolved Raman and Luminescence (TRR/L), Visible and In frared Spectroscopy (VISIR), together with sound recording (MIC) and high-magnification imaging techniques (RMI). They provide information on the mineralogy, geochemistry and mineral context around the Perseverance Rover. The calibration of this complex suite is a major challenge. Not only does each technique require its own standards or references, their combination also introduces new requirements to obtain optimal scientific output. Elemental composition, molecular vibrational features, fluorescence, morphology and texture provide a full picture of the sample with spectral information that needs to be co-aligned, correlated, and individually calibrated. The resulting hardware includes different kinds of targets, each one covering different needs of the instrument. Standards for imaging calibration, geological samples for mineral identification and chemometric calculations or spectral references to calibrate and eval uate the health of the instrument, are all included in the SuperCam Calibration Target (SCCT). The system also includes a specifically designed assembly in which the samples are mounted. This hardware allows the targets to survive the harsh environmental condi tions of the launch, cruise, landing and operation on Mars during the whole mission. Here we summarize the design, development, integration, verification and functional testing of the SCCT. This work includes some key results obtained to verify the scientific outcome of the SuperCam system.
    Palabras Clave
    Perseverance rover · Jezero crater · LIBS · Raman spectroscopy · Infrared spectroscopy · SuperCam · Calibration
    ISSN
    0038-6308
    Revisión por pares
    SI
    DOI
    10.1007/s11214-020-00764-w
    Patrocinador
    Proyecto MINECO Retos de la Sociedad. Ref. ESP2017-87690-C3-1-R
    Idioma
    eng
    URI
    http://uvadoc.uva.es/handle/10324/46259
    Tipo de versión
    info:eu-repo/semantics/publishedVersion
    Derechos
    openAccess
    Collections
    • DEP32 - Artículos de revista [284]
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