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Atacama Cosmology Telescope: Component-separated maps of CMB temperature and the thermal Sunyaev-Zel'dovich effect

  • Mathew S. Madhavacheril
  • , J. Colin Hill
  • , Sigurd Næss
  • , Graeme E. Addison
  • , Simone Aiola
  • , Taylor Baildon
  • , Nicholas Battaglia
  • , Rachel Bean
  • , J. Richard Bond
  • , Erminia Calabrese
  • , Victoria Calafut
  • , Steve K. Choi
  • , Omar Darwish
  • , Rahul Datta
  • , Mark J. Devlin
  • , Joanna Dunkley
  • , Rolando Dünner
  • , Simone Ferraro
  • , Patricio A. Gallardo
  • , Vera Gluscevic
  • Mark Halpern, Dongwon Han, Matthew Hasselfield, Matt Hilton, Adam D. Hincks, Renée HloŽek, Shuay Pwu Patty Ho, Kevin M. Huffenberger, John P. Hughes, Brian J. Koopman, Arthur Kosowsky, Martine Lokken, Thibaut Louis, Marius Lungu, Amanda Macinnis, Loïc Maurin, Jeffrey J. McMahon, Kavilan Moodley, Federico Nati, Michael D. Niemack, Lyman A. Page, Bruce Partridge, Naomi Robertson, Neelima Sehgal, Emmanuel Schaan, Alessandro Schillaci, Blake D. Sherwin, Cristóbal Sifón, Sara M. Simon, David N. Spergel, Suzanne T. Staggs, Emilie R. Storer, Alexander Van Engelen, Eve M. Vavagiakis, Edward J. Wollack, Zhilei Xu
  • Perimeter Institute for Theoretical Physics
  • Princeton University
  • Columbia University
  • Simons Foundation
  • Institute for Advanced Studies
  • Johns Hopkins University
  • University of Michigan, Ann Arbor
  • Cornell University
  • University of Toronto
  • Cardiff University
  • University of Cambridge
  • University of Pennsylvania
  • Pontificia Universidad Católica de Chile
  • Lawrence Berkeley National Laboratory
  • University of Southern California
  • University of British Columbia
  • Stony Brook University
  • University of KwaZulu-Natal
  • Florida State University
  • Rutgers - The State University of New Jersey, New Brunswick
  • Yale University
  • University of Pittsburgh
  • IN2P3/CNRS
  • Institut d'Astrophysique Spatiale
  • University of Milan - Bicocca
  • Haverford College
  • California Institute of Technology
  • Pontificia Universidad Católica de Valparaíso
  • Arizona State University
  • NASA Goddard Space Flight Center

Research output: Contribution to journalArticlepeer-review

89 Scopus citations

Abstract

Optimal analyses of many signals in the cosmic microwave background (CMB) require map-level extraction of individual components in the microwave sky, rather than measurements at the power spectrum level alone. To date, nearly all map-level component separation in CMB analyses has been performed exclusively using satellite data. In this paper, we implement a component separation method based on the internal linear combination (ILC) approach which we have designed to optimally account for the anisotropic noise (in the 2D Fourier domain) often found in ground-based CMB experiments. Using this method, we combine multifrequency data from the Planck satellite and the Atacama Cosmology Telescope Polarimeter (ACTPol) to construct the first wide-area (≈2100 sq. deg.), arcminute-resolution component-separated maps of the CMB temperature anisotropy and the thermal Sunyaev-Zel'dovich (tSZ) effect sourced by the inverse-Compton scattering of CMB photons off hot, ionized gas. Our ILC pipeline allows for explicit deprojection of various contaminating signals, including a modified blackbody approximation of the cosmic infrared background (CIB) spectral energy distribution. The cleaned CMB maps will be a useful resource for CMB lensing reconstruction, kinematic SZ cross-correlations, and primordial non-Gaussianity studies. The tSZ maps will be used to study the pressure profiles of galaxies, groups, and clusters through cross-correlations with halo catalogs, with dust contamination controlled via CIB deprojection. The data products described in this paper are available on LAMBDA.

Original languageEnglish
Article number023534
JournalPhysical Review D
Volume102
Issue number2
DOIs
StatePublished - Jul 15 2020

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