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Superclustering with the Atacama Cosmology Telescope and Dark Energy Survey. I. Evidence for Thermal Energy Anisotropy Using Oriented StackingThe cosmic web contains filamentary structure on a wide range of scales. On the largest scales, superclustering aligns multiple galaxy clusters along intercluster bridges, visible through their thermal Sunyaev–Zel'dovich signal in the cosmic microwave background. We demonstrate a new, flexible method to analyze the hot gas signal from multiscale extended structures. We use a Compton y-map from the Atacama Cosmology Telescope (ACT) stacked on redMaPPer cluster positions from the optical Dark Energy Survey (DES). Cutout images from the y-map are oriented with large-scale structure information from DES galaxy data such that the superclustering signal is aligned before being overlaid. We find evidence of an extended quadrupole moment of the stacked y signal at the 3.5σ level, demonstrating that the large-scale thermal energy surrounding galaxy clusters is anisotropically distributed. We compare our ACT × DES results with the Buzzard simulations, finding broad agreement. Using simulations, we highlight the promise of this novel technique for constraining the evolution of anisotropic, non-Gaussian structure using future combinations of microwave and optical surveys.
Document ID
20220010703
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
M. Lokken ORCID
(University of Toronto Toronto, Ontario, Canada)
R. Hložek ORCID
(University of Toronto Toronto, Ontario, Canada)
A. van Engelen ORCID
(Arizona State University Tempe, Arizona, United States)
M. Madhavacheril ORCID
(Perimeter Institute Waterloo, Ontario, Canada)
E. Baxter ORCID
(University of Hawaii at Manoa Honolulu, Hawaii, United States)
J. DeRose ORCID
(Lawrence Berkeley National Laboratory Berkeley, California, United States)
C. Doux ORCID
(University of Pennsylvania Philadelphia, Pennsylvania, United States)
S. Pandey ORCID
(University of Pennsylvania Philadelphia, Pennsylvania, United States)
E. S. Rykoff ORCID
(Stanford University Stanford, California, United States)
G. Stein ORCID
(Lawrence Berkeley National Laboratory Berkeley, California, United States)
C. To ORCID
(Stanford University Stanford, California, United States)
T. M. C. Abbott
(Cerro Tololo Inter-American Observatory La Serena, Chile)
S. Adhikari ORCID
(University of Chicago Chicago, Illinois, United States)
M. Aguena ORCID
(Laboratório Interinstitucional de e-Astronomia—LIneA)
S. Allam ORCID
(Fermilab Batavia, Illinois, United States)
F. Andrade-Oliveira
(Laboratório Interinstitucional de e-Astronomia—LIneA)
J. Annis ORCID
(Fermilab Batavia, Illinois, United States)
N. Battaglia ORCID
(Cornell University Ithaca, New York, United States)
G. M. Bernstein ORCID
(University of Pennsylvania Philadelphia, Pennsylvania, United States)
E. Bertin ORCID
(Institut d'Astrophysique de Paris Paris, France)
J. R. Bond ORCID
(Canadian Institute for Theoretical Astrophysics Toronto, Ontario, Canada)
D. Brooks ORCID
(University College London London, United Kingdom)
E. Calabrese
(Cardiff University Cardiff, United Kingdom)
A. Carnero Rosell ORCID
(Laboratório Interinstitucional de e-Astronomia—LIneA)
M. Carrasco Kind ORCID
(National Center for Supercomputing Applications Urbana, Illinois, United States)
J. Carretero ORCID
(Institute for High Energy Physics Barcelona, Spain)
R. Cawthon ORCID
(University of Wisconsin–Madison Madison, Wisconsin, United States)
A. Choi ORCID
(The Ohio State University Columbus, Ohio, United States)
M. Costanzi ORCID
(University of Trieste Trieste, Italy)
M. Crocce ORCID
(Institut d'Estudis Espacials de Catalunya Barcelona, Spain)
L. N. da Costa ORCID
(Laboratório Interinstitucional de e-Astronomia—LIneA)
M. E. da Silva Pereira
(University of Michigan–Ann Arbor Ann Arbor, Michigan, United States)
J. De Vicente ORCID
(Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas Madrid, Spain)
S. Desai ORCID
(Indian Institute of Technology Hyderabad Sangāreddi, India)
J. P. Dietrich ORCID
(Ludwig Maximilian University of Munich Munich, Germany)
J. Dunkley ORCID
(Princeton University Princeton, New Jersey, United States)
S. Ferraro ORCID
(Lawrence Berkeley National Laboratory Berkeley, California, United States)
P. A. Gallardo ORCID
(Cornell University Ithaca, New York, United States)
E. J. Wollack ORCID
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Date Acquired
July 14, 2022
Publication Date
July 8, 2022
Publication Information
Publication: The Astrophysical Journal
Publisher: The Astrophysical Journal
Volume: 933
Issue: 2
Issue Publication Date: July 10, 2022
ISSN: 0004-637X
e-ISSN: 1538-4357
Subject Category
Astrophysics
Funding Number(s)
WBS: 920121
CONTRACT_GRANT: NSF AAG No. AST-1615657
CONTRACT_GRANT: (NSERC) [PGSD - 559296 - 2021]
CONTRACT_GRANT: NSF AST-0408698
PROJECT: NSF ACT AST-0965625
PROJECT: NSF ACT AST-1440226
CONTRACT_GRANT: PHY-0355328
CONTRACT_GRANT: PHY-0855887
CONTRACT_GRANT: PHY-1214379
CONTRACT_GRANT: NASA NNX13AE56G
CONTRACT_GRANT: NASA NNX14AB58G
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