Measurements of Ω and Λ from 42 High‐Redshift Supernovae
Измерения Ω и Λ по 42 сверхновым с большим красным смещением
1999-06-01
SCID: 54.1/6wdsupe7
Discuss with AI
Supernova Cosmology ProjectType Ia supernovaecosmological constanthigh-redshift supernovaemass density parameter
Figures from the paper
Abstract (AI)
We report measurements of the mass density, Ω M , and cosmological-constant energy density, Ω Λ , of the universe based on the analysis of 42 type Ia supernovae discovered by the Supernova Cosmology Project. The magnitude-redshift data for these supernovae, at redshifts between 0.18 and 0.83, are fitted jointly with a set of supernovae from the Calán/Tololo Supernova Survey, at redshifts below 0.1, to yield values for the cosmological parameters. All supernova peak magnitudes are standardized using a SN Ia light-curve width-luminosity relation. The measurement yields a joint probability distribution of the cosmological parameters that is approximated by the relation 0.8Ω M -0.6Ω Λ ≈-0.2±0.1 in the region of interest (Ω M ≲1.5). For a flat (Ω M +Ω Λ =1) cosmology we find Ω M flat =0.28 +0.09 -0.08 (1 σ statistical) +0.05 -0.04 (identified systematics). The data are strongly inconsistent with a Λ=0 flat cosmology, the simplest inflationary universe model. An open, Λ=0 cosmology also does not fit the data well: the data indicate that the cosmological constant is nonzero and positive, with a confidence of P (Λ>0)=99%, including the identified systematic uncertainties. The best-fit age of the universe relative to the Hubble time is t 0 flat =14.9 +1.4 -1.1 (0.63/ h ) Gyr for a flat cosmology. The size of our sample allows us to perform a variety of statistical tests to check for possible systematic errors and biases. We find no significant differences in either the host reddening distribution or Malmquist bias between the low-redshift Calán/Tololo sample and our high-redshift sample. Excluding those few supernovae that are outliers in color excess or fit residual does not significantly change the results. The conclusions are also robust whether or not a width-luminosity relation is used to standardize the supernova peak magnitudes. We discuss and constrain, where possible, hypothetical alternatives to a cosmological constant.
Key Findings
1
Analysis of 42 Type Ia supernovae at redshifts 0.18–0.83, combined with low-redshift supernovae, constrains cosmological density parameters.
2
Assuming a flat universe, the inferred matter density is Ω_M = 0.28^{+0.09}_{−0.08} statistical and +0.05/−0.04 systematic uncertainty.
3
The cosmological conclusions remain robust against tested reddening, Malmquist-bias, outlier, and light-curve-standardization effects.
4
The data strongly reject a flat Λ=0 cosmology and disfavor an open Λ=0 model, indicating a positive cosmological constant with P(Λ>0)=99%.
5
The supernova data follow the parameter relation 0.8Ω_M − 0.6Ω_Λ ≈ −0.2 ± 0.1 for Ω_M ≲ 1.5.
Research Object
The mass density and cosmological-constant energy density of the universe inferred from 42 high-redshift Type Ia supernovae
Research Subject
The values, joint constraints, and evidence for a nonzero positive cosmological constant in the cosmological parameters ΩM and ΩΛ
Publication Details
Publication Date
1999-06-01
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest