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Publications (3 of 3) Show all publications
Kiiveri, K., Gruen, D., Finoguenov, A., Erben, T., van Waerbeke, L., Rykoff, E., . . . Weller, J. (2021). CODEX weak lensing mass catalogue and implications on the mass-richness relation. Monthly notices of the Royal Astronomical Society, 502(1), 1494-1526
Open this publication in new window or tab >>CODEX weak lensing mass catalogue and implications on the mass-richness relation
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2021 (English)In: Monthly notices of the Royal Astronomical Society, ISSN 0035-8711, E-ISSN 1365-2966, Vol. 502, no 1, p. 1494-1526Article in journal (Refereed) Published
Abstract [en]

The COnstrain Dark Energy with X-ray clusters (CODEX) sample contains the largest flux limited sample of X-ray clusters at 0.35 < z < 0.65. It was selected from ROSAT data in the 10 000 square degrees of overlap with BOSS, mapping a total number of 2770 high-z galaxy clusters. We present here the full results of the CFHT CODEX programme on cluster mass measurement, including a reanalysis of CFHTLS Wide data, with 25 individual lensing-constrained cluster masses. We employ LENSFIT shape measurement and perform a conservative colour–space selection and weighting of background galaxies. Using the combination of shape noise and an analytic covariance for intrinsic variations of cluster profiles at fixed mass due to large-scale structure, miscentring, and variations in concentration and ellipticity, we determine the likelihood of the observed shear signal as a function of true mass for each cluster. We combine 25 individual cluster mass likelihoods in a Bayesian hierarchical scheme with the inclusion of optical and X-ray selection functions to derive constraints on the slope α, normalization β, and scatter σln λ|μ of our richness–mass scaling relation model in log-space: |${\langle {\rm In}\,\, \lambda\!\!\mid\!\!\mu\rangle = \alpha\mu + \beta,} $| with μ = ln (M200c/Mpiv), and Mpiv = 1014.81M⊙. We find a slope |$\alpha = 0.49^{+0.20}_{-0.15}$|⁠, normalization |$\exp (\beta) = 84.0^{+9.2}_{-14.8}$|⁠, and |$\sigma _{\ln \lambda | \mu } = 0.17^{+0.13}_{-0.09}$| using CFHT richness estimates. In comparison to other weak lensing richness–mass relations, we find the normalization of the richness statistically agreeing with the normalization of other scaling relations from a broad redshift range (0.0 < z < 0.65) and with different cluster selection (X-ray, Sunyaev–Zeldovich, and optical).

Keywords
gravitational lensing: weak, galaxies: clusters: general, cosmology: observations
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-195441 (URN)10.1093/mnras/staa3936 (DOI)000649423200101 ()2-s2.0-85117272260 (Scopus ID)
Available from: 2021-08-18 Created: 2021-08-18 Last updated: 2022-11-10Bibliographically approved
Sugai, H., Ade, P. A., Akiba, Y., Alonso, D., Arnold, K., Aumont, J., . . . Zonca, A. (2020). Updated Design of the CMB Polarization Experiment Satellite LiteBIRD. Journal of Low Temperature Physics, 199(3-4), 1107-1117
Open this publication in new window or tab >>Updated Design of the CMB Polarization Experiment Satellite LiteBIRD
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2020 (English)In: Journal of Low Temperature Physics, ISSN 0022-2291, E-ISSN 1573-7357, Vol. 199, no 3-4, p. 1107-1117Article in journal (Refereed) Published
Abstract [en]

Recent developments of transition-edge sensors (TESs), based on extensive experience in ground-based experiments, have been making the sensor techniques mature enough for their application on future satellite cosmic microwave background (CMB) polarization experiments. LiteBIRD is in the most advanced phase among such future satellites, targeting its launch in Japanese Fiscal Year 2027 (2027FY) with JAXA's H3 rocket. It will accommodate more than 4000 TESs in focal planes of reflective low-frequency and refractive medium-and-high-frequency telescopes in order to detect a signature imprinted on the CMB by the primordial gravitational waves predicted in cosmic inflation. The total wide frequency coverage between 34 and 448 GHz enables us to extract such weak spiral polarization patterns through the precise subtraction of our Galaxy's foreground emission by using spectral differences among CMB and foreground signals. Telescopes are cooled down to 5 K for suppressing thermal noise and contain polarization modulators with transmissive half-wave plates at individual apertures for separating sky polarization signals from artificial polarization and for mitigating from instrumental 1/f noise. Passive cooling by using V-grooves supports active cooling with mechanical coolers as well as adiabatic demagnetization refrigerators. Sky observations from the second Sun-Earth Lagrangian point, L2, are planned for 3 years. An international collaboration between Japan, the USA, Canada, and Europe is sharing various roles. In May 2019, the Institute of Space and Astronautical Science, JAXA, selected LiteBIRD as the strategic large mission No. 2.

Keywords
Satellite, Cosmic microwave background, Polarization, Inflation, Primordial gravitational wave
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-179608 (URN)10.1007/s10909-019-02329-w (DOI)000509338600002 ()
Available from: 2020-03-18 Created: 2020-03-18 Last updated: 2022-03-23Bibliographically approved
Grandis, S., Klein, M., Mohr, J. J., Bocquet, S., Paulus, M., Abbott, T. M., . . . Wilkinson, R. (2020). Validation of selection function, sample contamination and mass calibration in galaxy cluster samples. Monthly notices of the Royal Astronomical Society, 498(1), 771-798
Open this publication in new window or tab >>Validation of selection function, sample contamination and mass calibration in galaxy cluster samples
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2020 (English)In: Monthly notices of the Royal Astronomical Society, ISSN 0035-8711, E-ISSN 1365-2966, Vol. 498, no 1, p. 771-798Article in journal (Refereed) Published
Abstract [en]

We construct and validate the selection function of the MARD-Y3 galaxy cluster sample. This sample was selected through optical follow-up of the 2nd ROSAT faint source catalogue with Dark Energy Survey year 3 data. The selection function is modelled by combining an empirically constructed X-ray selection function with an incompleteness model for the optical follow-up. We validate the joint selection function by testing the consistency of the constraints on the X-ray flux–mass and richness–mass scaling relation parameters derived from different sources of mass information: (1) cross-calibration using South Pole Telescope Sunyaev-Zel'dovich (SPT-SZ) clusters, (2) calibration using number counts in X-ray, in optical and in both X-ray and optical while marginalizing over cosmological parameters, and (3) other published analyses. We find that the constraints on the scaling relation from the number counts and SPT-SZ cross-calibration agree, indicating that our modelling of the selection function is adequate. Furthermore, we apply a largely cosmology independent method to validate selection functions via the computation of the probability of finding each cluster in the SPT-SZ sample in the MARD-Y3 sample and vice versa. This test reveals no clear evidence for MARD-Y3 contamination, SPT-SZ incompleteness or outlier fraction. Finally, we discuss the prospects of the techniques presented here to limit systematic selection effects in future cluster cosmological studies.

Keywords
methods: statistical, galaxies: clusters: general, large-scale structure of Universe, X-rays: galaxies: clusters
National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-187873 (URN)10.1093/mnras/staa2333 (DOI)000587741300056 ()2-s2.0-85096896927 (Scopus ID)
Available from: 2021-01-07 Created: 2021-01-07 Last updated: 2022-11-10Bibliographically approved
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-8282-2010

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