학술논문

Planck intermediate results. LIII. Detection of velocity dispersion from the kinetic Sunyaev-Zeldovich effect
Document Type
Working Paper
Author
Planck CollaborationAghanim, N.Akrami, Y.Ashdown, M.Aumont, J.Baccigalupi, C.Ballardini, M.Banday, A. J.Barreiro, R. B.Bartolo, N.Basak, S.Battye, R.Benabed, K.Bernard, J. -P.Bersanelli, M.Bielewicz, P.Bond, J. R.Borrill, J.Bouchet, F. R.Burigana, C.Calabrese, E.Carron, J.Chiang, H. C.Comis, B.Contreras, D.Crill, B. P.Curto, A.Cuttaia, F.de Bernardis, P.de Rosa, A.de Zotti, G.Delabrouille, J.Di Valentino, E.Dickinson, C.Diego, J. M.Doré, O.Ducout, A.Dupac, X.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.Gerbino, M.Górski, K. M.Gruppuso, A.Gudmundsson, J. E.Handley, W.Hansen, F. K.Herranz, D.Hivon, E.Huang, Z.Jaffe, A. H.Keihänen, E.Keskitalo, R.Kiiveri, K.Kim, J.Kisner, T. S.Krachmalnicoff, N.Kunz, M.Kurki-Suonio, H.Lamarre, J. -M.Lasenby, A.Lattanzi, M.Lawrence, C. R.Jeune, M. LeLevrier, F.Liguori, M.Lilje, P. B.Lindholm, V.López-Caniego, M.Lubin, P. M.Ma, Y. -Z.Macías-Pérez, J. F.Maggio, G.Maino, D.Mandolesi, N.Mangilli, A.Martin, P. G.Martínez-González, E.Matarrese, S.Mauri, N.McEwen, J. D.Melchiorri, A.Mennella, A.Migliaccio, M.Miville-Deschênes, M. -A.Molinari, D.Moneti, A.Montier, L.Morgante, G.Natoli, P.Oxborrow, C. A.Pagano, L.Paoletti, D.Partridge, B.Perdereau, O.Perotto, L.Pettorino, V.Piacentini, F.Plaszczynski, S.Polastri, L.Polenta, G.Rachen, J. P.Racine, B.Reinecke, M.Remazeilles, M.Renzi, A.Rocha, G.Roudier, G.Ruiz-Granados, B.Sandri, M.Savelainen, M.Scott, D.Sirignano, C.Sirri, G.Spencer, L. D.Stanco, L.Sunyaev, R.Tauber, J. A.Tavagnacco, D.Tenti, M.Toffolatti, L.Tomasi, M.Tristram, M.Trombetti, T.Valiviita, J.Van Tent, F.Vielva, P.Villa, F.Vittorio, N.Wandelt, B. D.Wehus, I. K.Zacchei, A.Zonca, A.
Source
A&A 617, A48 (2018)
Subject
Astrophysics - Cosmology and Nongalactic Astrophysics
Language
Abstract
Using the ${\it Planck}$ full-mission data, we present a detection of the temperature (and therefore velocity) dispersion due to the kinetic Sunyaev-Zeldovich (kSZ) effect from clusters of galaxies. To suppress the primary CMB and instrumental noise we derive a matched filter and then convolve it with the ${\it Planck}$ foreground-cleaned `${\tt 2D-ILC\,}$' maps. By using the Meta Catalogue of X-ray detected Clusters of galaxies (MCXC), we determine the normalized ${\it rms}$ dispersion of the temperature fluctuations at the positions of clusters, finding that this shows excess variance compared with the noise expectation. We then build an unbiased statistical estimator of the signal, determining that the normalized mean temperature dispersion of $1526$ clusters is $\langle \left(\Delta T/T \right)^{2} \rangle = (1.64 \pm 0.48) \times 10^{-11}$. However, comparison with analytic calculations and simulations suggest that around $0.7\,\sigma$ of this result is due to cluster lensing rather than the kSZ effect. By correcting this, the temperature dispersion is measured to be $\langle \left(\Delta T/T \right)^{2} \rangle = (1.35 \pm 0.48) \times 10^{-11}$, which gives a detection at the $2.8\,\sigma$ level. We further convert uniform-weight temperature dispersion into a measurement of the line-of-sight velocity dispersion, by using estimates of the optical depth of each cluster (which introduces additional uncertainty into the estimate). We find that the velocity dispersion is $\langle v^{2} \rangle =(123\,000 \pm 71\,000)\,({\rm km}\,{\rm s}^{-1})^{2}$, which is consistent with findings from other large-scale structure studies, and provides direct evidence of statistical homogeneity on scales of $600\,h^{-1}{\rm Mpc}$. Our study shows the promise of using cross-correlations of the kSZ effect with large-scale structure in order to constrain the growth of structure.
Comment: 20 pages, 12 figures and 8 tables, A&A in press