Changes between Version 2 and Version 3 of Talks/Fall2013/SpecialSeminars/130926a


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Timestamp:
09/23/13 10:36:30 (13 years ago)
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zoltan@…
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  • Talks/Fall2013/SpecialSeminars/130926a

    v2 v3  
    33
    44Abstract:
    5 Galaxy clusters form from the rarest peaks in the initial matter distribution, and hence are a sensitive probe of the amplitude of density fluctuations (sigma_8), the amount of matter in the universe, and the growth rate of structure. Galaxy clusters have the potential to constrain dark energy and neutrino masses. However, cluster cosmology is currently limited by systematic uncertainties due to poorly understood intracluster gas physics. I will present new statistical approaches to understand clusters and improve their cosmological constraining power through the thermal Sunyaev-Zel'dovich (tSZ) effect. In particular, I will describe a forthcoming first detection of the cross-correlation of the tSZ signal reconstructed from Planck data with the large-scale matter distribution traced by the Planck CMB lensing potential. This statistic measures the amount of hot gas found in moderately massive groups and clusters (M ~ 10^{13}-10^{14.5} M_sun), a mass scale below that probed by direct cluster detections. I will also discuss related work in progress using data from the Atacama Cosmology Telescope (ACT).
     5Galaxy clusters form from the rarest peaks in the initial matter distribution, and hence are a sensitive probe of the amplitude of density fluctuations (sigma_8), the amount of matter in the universe, and the growth rate of structure. Galaxy clusters have the potential to constrain dark energy and neutrino masses. However, cluster cosmology is currently limited by systematic uncertainties due to poorly understood intracluster gas physics. I will present new statistical approaches to understand clusters and improve their cosmological constraining power through the thermal Sunyaev-Zel'dovich (tSZ) effect. In particular, I will describe a forthcoming first detection of the cross-correlation of the tSZ signal reconstructed from Planck data with the large-scale matter distribution traced by the Planck CMB lensing potential. This statistic measures the amount of hot gas found in moderately massive groups and clusters (M ~ 10^13 - 10^14.5 M_sun), a mass scale below that probed by direct cluster detections. I will also discuss related work in progress using data from the Atacama Cosmology Telescope (ACT).