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Velocity dispersions of clusters in the Dark Energy Survey Y3 redMaPPer catalogue

dc.contributor.authorWetzell, V.
dc.contributor.authorJeltema, T.
dc.contributor.authorHegland, B.
dc.contributor.authorEverett, S.
dc.contributor.authorGiles, P. A.
dc.contributor.authorWilkinson, R.
dc.contributor.authorFarahi, A.
dc.contributor.authorCostanzi, M
dc.contributor.authorHollowood, D.
dc.contributor.authorUpsdell, E.
dc.contributor.authorCarollo, D
dc.contributor.authorDavis, Tamara
dc.contributor.authorLidman, Christopher
dc.contributor.authorTucker, Brad
dc.date.accessioned2026-03-06T04:34:35Z
dc.date.available2026-03-06T04:34:35Z
dc.date.issued2022
dc.date.updated2023-10-01T07:15:52Z
dc.description.abstractWe measure the velocity dispersions of clusters of galaxies selected by the red-sequence Matched-filter Probabilistic Percolation (redMaPPer) algorithm in the first three years of data from the Dark Energy Survey (DES), allowing us to probe cluster selection and richness estimation, ?, in light of cluster dynamics. Our sample consists of 126 clusters with sufficient spectroscopy for individual velocity dispersion estimates. We examine the correlations between cluster velocity dispersion, richness, X-ray temperature, and luminosity, as well as central galaxy velocity offsets. The velocity dispersion-richness relation exhibits a bimodal distribution. The majority of clusters follow scaling relations between velocity dispersion, richness, and X-ray properties similar to those found for previous samples; however, there is a significant population of clusters with velocity dispersions that are high for their richness. These clusters account for roughly 22 per cent of the ? < 70 systems in our sample, but more than half (55 per cent) of ? < 70 clusters at z > 0.5. A couple of these systems are hot and X-ray bright as expected for massive clusters with richnesses that appear to have been underestimated, but most appear to have high velocity dispersions for their X-ray properties likely due to line-of-sight structure. These results suggest that projection effects contribute significantly to redMaPPer selection, particularly at higher redshifts and lower richnesses. The redMaPPer determined richnesses for the velocity dispersion outliers are consistent with their X-ray properties, but several are X-ray undetected and deeper data are needed to understand their nature.
dc.description.sponsorshipThis work was supported by the U.S. Department of Energy, Office of Science, Office of High Energy Physics, under Award Numbers DE-SC0010107 and A00-1465-001. AS is supported by the ERC-StG ‘ClustersXCosmo’ grant agreement 716762, by the FARE-MIUR grant ’ClustersXEuclid’ R165SBKTMA, and by INFN InDark Grant. PTPV was supported by Fundação para a Ciência e a Tecnologia (FCT) through research grants UIDB/04434/2020andUIDP/04434/2020.
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0035-8711
dc.identifier.urihttps://hdl.handle.net/1885/733807167
dc.language.isoen_AUen_AU
dc.publisherOxford University Press
dc.rights© 2022 The Author(s)
dc.sourceMonthly Notices of the Royal Astronomical Society
dc.titleVelocity dispersions of clusters in the Dark Energy Survey Y3 redMaPPer catalogue
dc.typeJournal article
local.bibliographicCitation.issue4
local.bibliographicCitation.lastpage4717
local.bibliographicCitation.startpage4696
local.contributor.affiliationWetzell, V., University of California
local.contributor.affiliationJeltema, T., University of California
local.contributor.affiliationHegland, B., University of California
local.contributor.affiliationEverett, S., University of California
local.contributor.affiliationGiles, P. A., University of Sussex
local.contributor.affiliationWilkinson, R., University of Sussex
local.contributor.affiliationFarahi, A., University of Michigan
local.contributor.affiliationCostanzi, M., Osservatorio Astronomico di Trieste
local.contributor.affiliationHollowood, D., University of California
local.contributor.affiliationUpsdell, E., University of Sussex
local.contributor.affiliationCarollo, D., INAF, Astrophysical Observatory of Turin
local.contributor.affiliationDavis, Tamara, University of Queensland
local.contributor.affiliationLidman, Christopher, College of Science, ANU
local.contributor.affiliationTucker, Brad, College of Science, ANU
local.contributor.authoruidLidman, Christopher, u3712407
local.contributor.authoruidTucker, Brad, u4362859
local.description.embargo2099-12-31
local.description.notesImported from ARIES
local.identifier.absfor510100 - Astronomical sciences
local.identifier.absseo280120 - Expanding knowledge in the physical sciences
local.identifier.ariespublicationa383154xPUB36144
local.identifier.citationvolume514
local.identifier.doi10.1093/mnras/stac1623
local.identifier.scopusID2-s2.0-85134760042
local.type.statusPublished Version
publicationvolume.volumeNumber514

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