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    Exploring cosmic origins with CORE: cosmological parameters

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    ExploringCosmicCosmo ... (3.790Mb)
    Identificadores
    URI: https://hdl.handle.net/10902/35007
    DOI: 10.1088/1475-7516/2018/04/017
    ISSN: 1475-7516
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    Autoría
    Di Valentino, E.; Brinckmann, T.; Gerbino, M.; Poulin, V.; Bouchet, F. R,; Lesgourgues, J.; Melchiorri, A.; Chluba, J.; Clesse, S.; Delabrouille, J.; Dvorkin, C.; Forastieri, F.; Galli, S.; Hooper, D. C.; Lattanzi, M.; Martins, , C.J.A.P.; Diego Rodríguez, José MaríaAutoridad Unican; Fernández Cobos, RaúlAutoridad Unican; Martínez González, Enrique; [et al.]
    Fecha
    2018-04
    Derechos
    Alojado según Resolución CNEAI 9/12/24 (ANECA) © 2018 IOP Publishing Ltd and Sissa Medialab
    Publicado en
    Journal of Cosmology and Astroparticle Physics, 2018, 2018(4), 017
    Editorial
    IOP Publishing
    Enlace a la publicación
    http://doi.org/10.1088/1475-7516/2018/04/017
    Palabras clave
    Cosmological parameters from CMBR
    CMBR experiments
    Neutrino masses from cosmology
    Resumen/Abstract
    We forecast the main cosmological parameter constraints achievable with the CORE space mission which is dedicated to mapping the polarisation of the Cosmic Microwave Background (CMB). CORE was recently submitted in response to ESA’s fifth call for medium-sized mission proposals (M5). Here we report the results from our pre-submission study of the impact of various instrumental options, in particular the telescope size and sensitivity level, and review the great, transformative potential of the mission as proposed. Specifically, we assess the impact on a broad range of fundamental parameters of our Universe as a function of the expected CMB characteristics, with other papers in the series focusing on controlling astrophysical and instrumental residual systematics. In this paper, we assume that only a few central CORE frequency channels are usable for our purpose, all others being devoted to the cleaning of astrophysical contaminants. On the theoretical side, we assume ΛCDM as our general framework and quantify the improvement provided by CORE over the current constraints from the Planck 2015 release. We also study the joint sensitivity of CORE and of future Baryon Acoustic Oscillation and Large Scale Structure experiments like DESI and Euclid. Specific constraints on the physics of inflation are presented in another paper of the series. In addition to the six parameters of the base ΛCDM, which describe the matter content of a spatially flat universe with adiabatic and scalar primordial fluctuations from inflation, we derive the precision achievable on parameters like those describing curvature, neutrino physics, extra light relics, primordial helium abundance, dark matter annihilation, recombination physics, variation of fundamental constants, dark energy, modified gravity, reionization and cosmic birefringence. In addition to assessing the improvement on the precision of individual parameters, we also forecast the post-CORE overall reduction of the allowed parameter space with figures of merit for various models increasing by as much as ∼ 10⁷ as compared to Planck 2015, and 10⁵ with respect to Planck 2015 + future BAO measurements.
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    UNIVERSIDAD DE CANTABRIA

    Repositorio realizado por la Biblioteca Universitaria utilizando DSpace software
    Contacto | Sugerencias
    Metadatos sujetos a:licencia de Creative Commons Reconocimiento 4.0 España