Bibcode
Planck Collaboration; Aghanim, N.; Ashdown, M.; Aumont, J.; Baccigalupi, C.; Ballardini, M.; Banday, A. J.; Barreiro, R. B.; Bartolo, N.; Basak, S.; Benabed, K.; Bernard, J.-P.; Bersanelli, M.; Bielewicz, P.; Bonavera, L.; Bond, J. R.; Borrill, J.; Bouchet, F. R.; Boulanger, F.; Burigana, C.; Calabrese, E.; Cardoso, J.-F.; Carron, J.; Chiang, H. C.; Colombo, L. P. L.; Comis, B.; Couchot, F.; Coulais, A.; Crill, B. P.; Curto, A.; Cuttaia, F.; de Bernardis, P.; de Zotti, G.; Delabrouille, J.; Di Valentino, E.; Dickinson, C.; Diego, J. M.; Doré, O.; Douspis, M.; Ducout, A.; Dupac, X.; Dusini, S.; Elsner, F.; Enßlin, T. A.; Eriksen, H. K.; Falgarone, E.; Fantaye, Y.; Finelli, F.; Forastieri, F.; Frailis, M.; Fraisse, A. A.; Franceschi, E.; Frolov, A.; Galeotta, S.; Galli, S.; Ganga, K.; Génova-Santos, R. T.; Gerbino, M.; Ghosh, T.; Giraud-Héraud, Y.; González-Nuevo, J.; Górski, K. M.; Gruppuso, A.; Gudmundsson, J. E.; Hansen, F. K.; Helou, G.; Henrot-Versillé, S.; Herranz, D.; Hivon, E.; Huang, Z.; Jaffe, A. H.; Jones, W. C.; Keihänen, E.; Keskitalo, R.; Kiiveri, K.; Kisner, T. S.; Krachmalnicoff, N.; Kunz, M.; Kurki-Suonio, H.; Lamarre, J.-M.; Langer, M.; Lasenby, A.; Lattanzi, M.; Lawrence, C. R.; Le Jeune, M.; Levrier, F.; Lilje, P. B.; Lilley, M.; Lindholm, V.; López-Caniego, M.; Ma, Y.-Z.; Macías-Pérez, J. F.; Maggio, G.; Maino, D.; Mandolesi, N.; Mangilli, A.; Maris, M.; Martin, P. G.; Martínez-González, E.; Matarrese, S. et al.
Referencia bibliográfica
Astronomy and Astrophysics, Volume 596, id.A109, 26 pp.
Fecha de publicación:
12
2016
Revista
Número de citas
226
Número de citas referidas
201
Descripción
Using the Planck 2015 data release (PR2) temperature maps, we separate
Galactic thermal dust emission from cosmic infrared background (CIB)
anisotropies. For this purpose, we implement a specifically tailored
component-separation method, the so-called generalized needlet internal
linear combination (GNILC) method, which uses spatial information (the
angular powerspectra) to disentangle the Galactic dust emission and CIB
anisotropies. We produce significantly improved all-sky maps of Planck
thermal dust emission, with reduced CIB contamination, at 353, 545, and
857 GHz. By reducing the CIB contamination of the thermal dust maps, we
provide more accurate estimates of the local dust temperature and dust
spectral index over the sky with reduced dispersion, especially at high
Galactic latitudes above b = ±20°. We find that the dust
temperature is T = (19.4 ± 1.3) K and the dust spectral index is
β = 1.6 ± 0.1 averaged over the whole sky, while T = (19.4
± 1.5) K and β = 1.6 ± 0.2 on 21% of the sky at high
latitudes. Moreover, subtracting the new CIB-removed thermal dust maps
from the CMB-removed Planck maps gives access to the CIB anisotropies
over 60% of the sky at Galactic latitudes |b| > 20°. Because they
are a significant improvement over previous Planck products, the GNILC
maps are recommended for thermal dust science. The new CIB maps can be
regarded as indirect tracers of the dark matter and they are recommended
for exploring cross-correlations with lensing and large-scale structure
optical surveys. The reconstructed GNILC thermal dust and CIB maps are
delivered as Planck products.