Cosmological Results from High‐zSupernovae

Космологические результаты по сверхновым на больших красных смещениях
J. Tonry, B. Schmidt, B. Barris, P. Candia, Peter Challis, A. Clocchiatti, Alison L. Coil, A. V. Filippenko, P. Garnavich, Craig J. Hogan, S. T. Holland, Saurabh W. Jha, R. Kirshner, K. Krisciunas, B. Leibundgut, Weidong Li, T. Matheson, M. M. Phillips, Adam G. Riess, R. A. Schommer, R. Chris Smith, J. Sollerman, J. Spyromilio, C. W. Stubbs, N. B. Suntzeff
2003-08-20

Type Ia supernovaeaccelerating universecosmological parametersdark energy equation of statesupernova luminosity distances
The High- z Supernova Search Team has discovered and observed eight new supernovae in the redshift interval z = 0.3-1.2. These independent observations, analyzed by similar but distinct methods, confirm the results of Riess and Perlmutter and coworkers that supernova luminosity distances imply an accelerating universe. More importantly, they extend the redshift range of consistently observed Type Ia supernovae (SNe Ia) to z ≈ 1, where the signature of cosmological effects has the opposite sign of some plausible systematic effects. Consequently, these measurements not only provide another quantitative confirmation of the importance of dark energy, but also constitute a powerful qualitative test for the cosmological origin of cosmic acceleration. We find a rate for SN Ia of (1.4 ± 0.5) × 10 -4 h 3 Mpc -3 yr -1 at a mean redshift of 0.5. We present distances and host extinctions for 230 SN Ia. These place the following constraints on cosmological quantities: if the equation of state parameter of the dark energy is w = -1, then H 0 t 0 = 0.96 ± 0.04, and Ω Λ - 1.4Ω M = 0.35 ± 0.14. Including the constraint of a flat universe, we find Ω M = 0.28 ± 0.05, independent of any large-scale structure measurements. Adopting a prior based on the Two Degree Field (2dF) Redshift Survey constraint on Ω M and assuming a flat universe, we find that the equation of state parameter of the dark energy lies in the range -1.48 < w < -0.72 at 95% confidence. If we further assume that w > -1, we obtain w < -0.73 at 95% confidence. These constraints are similar in precision and in value to recent results reported using the WMAP satellite, also in combination with the 2dF Redshift Survey.
1
Assuming a flat universe, the data give ΩM = 0.28 ± 0.05; with a 2dF prior, −1.48 < w < −0.72 at 95% confidence, or w < −0.73 if w > −1.
2
Eight new Type Ia supernovae at redshifts z = 0.3–1.2 independently confirm that supernova luminosity distances indicate an accelerating universe.
3
Extending consistently observed Type Ia supernovae to z ≈ 1 provides a qualitative test because cosmological acceleration and plausible systematic effects predict opposite redshift signatures.
4
For dark-energy equation of state w = −1, the observations constrain H₀t₀ = 0.96 ± 0.04 and ΩΛ − 1.4ΩM = 0.35 ± 0.14.
5
The measured Type Ia supernova rate is (1.4 ± 0.5) × 10⁻⁴ h³ Mpc⁻³ yr⁻¹ at a mean redshift of 0.5, based on distances and host extinctions for 230 supernovae.

Type Ia supernovae at redshifts z = 0.3–1.2

Their luminosity distances and occurrence rate as probes of cosmic acceleration, dark energy, and cosmological parameters

Publication Details
Publication Date
2003-08-20
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Authors
J. Tonry
B. Schmidt
B. Barris
P. Candia
Peter Challis
A. Clocchiatti
Alison L. Coil
A. V. Filippenko
P. Garnavich
Craig J. Hogan
S. T. Holland
Saurabh W. Jha
R. Kirshner
K. Krisciunas
B. Leibundgut
Weidong Li
T. Matheson
M. M. Phillips
Adam G. Riess
R. A. Schommer
R. Chris Smith
J. Sollerman
J. Spyromilio
C. W. Stubbs
N. B. Suntzeff
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