The most massive objects in the Universe
arXiv:1004.5349 · doi:10.1088/2041-8205/755/2/L36
Abstract
We calculate the most massive object in the Universe, finding it to be a cluster of galaxies with total mass M_200=3.8e15 Msun at z=0.22, with the 1 sigma marginalized regions being 3.3e15 Msun<M<4.4e15 Msun and 0.12<z<0.36. We restrict ourselves to self-gravitating bound objects, and base our results on halo mass functions derived from N-body simulations. Since we consider the very highest mass objects, the number of candidates is expected to be small, and therefore each candidate can be extensively observed and characterized. If objects are found with excessively large masses, or insufficient objects are found near the maximum expected mass, this would be a strong indication of the failure of LambdaCDM. The expected range of the highest masses is very sensitive to redshift, providing an additional evolutionary probe of LambdaCDM. We find that the three most massive clusters in the recent SPT 178 deg^2 catalog match predictions, while XMMU J2235.3--2557 is roughly 3 sigma inconsistent with LambdaCDM. We discuss Abell 2163 and Abell 370 as candidates for the most massive cluster in the Universe, although uncertainties in their masses preclude definitive comparisons with theory. Our findings motivate further observations of the highest mass end of the mass function. Future surveys will explore larger volumes, and the most massive object in the Universe may be identified within the next decade. The mass distribution of the largest objects in the Universe is a potentially powerful test of LambdaCDM, probing non-Gaussianity and the behavior of gravity on large scales.
4 pages, 2 figures; Abell 2163 and Abell 370 included as candidates for the most massive cluster in the Universe
References in corpus (25)
- Seven-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Halos and galaxies in the standard cosmological model: results from the Bolshoi simulation
- Halo concentrations in the standard LCDM cosmology
- Planck Early Results VIII: The all-sky Early Sunyaev-Zeldovich cluster sample
- The halo mass function from the dark ages through the present day
- Galaxy Clusters Selected with the Sunyaev-Zel'dovich Effect from 2008 South Pole Telescope Observations
- The Observed Growth of Massive Galaxy Clusters II: X-ray Scaling Relations
- An SZ-selected sample of the most massive galaxy clusters in the 2500-square-degree South Pole Telescope survey
- CMB Constraints on Primordial non-Gaussianity from the Bispectrum (f_{NL}) and Trispectrum (g_{NL} and τ_{NL}) and a New Consistency Test of Single-Field Inflation
- Discovery and Cosmological Implications of SPT-CL J2106-5844, the Most Massive Known Cluster at z > 1
- Simultaneous Falsification of LCDM and Quintessence with Massive, Distant Clusters
- Hubble Space Telescope Weak-lensing Study of the Galaxy Cluster XMMU J2235.3-2557 at z=1.4: A Surprisingly Massive Galaxy Cluster when the Universe is One-third of its Current Age
- SPT-CL J0546-5345: A Massive z > 1 Galaxy Cluster Selected Via the Sunyaev-Zel'dovich Effect with the South Pole Telescope
- The X-ray luminous galaxy cluster XMMU J1007.4+1237 at z=1.56 - The dawn of starburst activity in cluster cores
- The Effect of Gas Physics on the Halo Mass Function
- Evolution of Massive Haloes in non-Gaussian Scenarios
- The potential of X-ray cluster surveys to constrain primordial non-Gaussianity
- Implications of multiple high-redshift galaxy clusters
- A2163: Merger events in the hottest Abell galaxy cluster I. Dynamical analysis from optical data
- Implications for Primordial Non-Gaussianity (f_NL) from weak lensing masses of high-z galaxy clusters
- Structure, Kinematics, and Chemical Enrichment Patterns after Major Gas-Rich Disc-Disc Mergers
- Most massive halos with Gumbel Statistics
- Probability of the most massive cluster under non-Gaussian initial conditions
- A pan-chromatic view of the galaxy cluster XMMU J1230.3+1339 at z=0.975 - Observing the assembly of a massive system
- A weak lensing analysis of the Abell 2163 cluster
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- Scaling relations for galaxy clusters in the Millennium-XXL simulation
- Dark energy two decades after: Observables, probes, consistency tests
- Voids in Modified Gravity: Excursion Set Predictions
- Spherical collapse in Galileon gravity: fifth force solutions, halo mass function and halo bias
- Statistics of extreme objects in the Juropa Hubble Volume simulation
- Dark energy and the structure of the Coma cluster of galaxies
- Growth of Cosmic Structure
- Abell 2744: Too much substructure for Lambda CDM?
- Probing dark energy models with extreme pairwise velocities of galaxy clusters from the DEUS-FUR simulations
- A Consistent Approach to Falsifying Lambda-CDM with Rare Galaxy Clusters
- The Massive and Distant Clusters of WISE Survey X: Initial Results from a Sunyaev-Zeldovich Effect Study of Massive Galaxy Clusters at z>1 using MUSTANG2 on the GBT
- The strongest gravitational lenses: II. Is the large Einstein radius of MACS J0717.5+3745 in conflict with LCDM?
- Exploring Effects on Magnifications due to Line-of-Sight Galaxies in the Hubble Frontier Fields
- Precise Mass Determination of SPT-CL J2106-5844, the Most Massive Cluster at z>1
- Cosmology with Galaxy Cluster Phase Spaces
- A graph of dark energy significance on different spatial and mass scales
- Order statistics applied to the most massive and most distant galaxy clusters
- X-ray cluster cosmology
- The environment-dependence of the growth of the most massive objects in the Universe
- AMICO galaxy clusters in KiDS-DR3: constraints on CDM from extreme value statistics
- On the Abundance of Extreme Voids II: A Survey of Void Mass Functions
- On the maximum volume of collapsing structures
- Testing the thermal Sunyaev-Zel'dovich power spectrum of a halo model using hydrodynamical simulations