Type Ia supernova discoveries at z > 1 from the Hubble Space Telescope:: Evidence for past deceleration and constraints on dark energy evolution

被引:3582
作者
Riess, AG
Strolger, LG
Tonry, J
Casertano, S
Ferguson, HC
Mobasher, B
Challis, P
Filippenko, AV
Jha, S
Li, WD
Chornock, R
Kirshner, RP
Leibundgut, B
Dickinson, M
Livio, M
Giavalisco, M
Steidel, CC
Benítez, T
Tsvetanov, Z
机构
[1] Space Telescope Sci Inst, Baltimore, MD 21218 USA
[2] Univ Hawaii, Inst Astron, Honolulu, HI 96822 USA
[3] Harvard Smithsonian Ctr Astrophys, Cambridge, MA 02138 USA
[4] Univ Calif Berkeley, Dept Astron, Berkeley, CA 94720 USA
[5] European So Observ, D-85748 Garching, Germany
[6] CALTECH, Dept Astron, Pasadena, CA 91125 USA
[7] Johns Hopkins Univ, Dept Phys & Astron, Baltimore, MD 21218 USA
关键词
cosmology : observations; distance scale; galaxies : distances and redshifts; supernovae : general;
D O I
10.1086/383612
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We have discovered 16 Type Ia supernovae (SNe Ia) with the Hubble Space Telescope (HST) and have used them to provide the first conclusive evidence for cosmic deceleration that preceded the current epoch of cosmic acceleration. These objects, discovered during the course of the GOODS ACS Treasury program, include 6 of the 7 highest redshift SNe Ia known, all at z > 1.25, and populate the Hubble diagram in unexplored territory. The luminosity distances to these objects and to 170 previously reported SNe Ia have been determined using empirical relations between light-curve shape and luminosity. A purely kinematic interpretation of the SN Ia sample provides evidence at the greater than 99% confidence level for a transition from deceleration to acceleration or, similarly, strong evidence for a cosmic jerk. Using a simple model of the expansion history, the transition between the two epochs is constrained to be at z = 0.46 +/- 0.13. The data are consistent with the cosmic concordance model of Omega(M) approximate to 0.3; Omega(Lambda) approximate to 0.7 (chi(dof)(2) = 1.06) and are inconsistent with a simple model of evolution or dust as an alternative to dark energy. For a flat universe with a cosmological constant, we measure Omega(M) = 0.29 +/- 0.05 (equivalently, Omega(Lambda) = 0.71). When combined with external flat-universe constraints, including the cosmic microwave background and large-scale structure, we find w = -1.02+/-(0.13)(0.19) (and w < -0.76 at the 95% confidence level) for an assumed static equation of state of dark energy, P = w rho c(2). Joint constraints on both the recent equation of state of dark energy, w(0), and its time evolution, dw/dz, are a factor of similar to 8 more precise than the first estimates and twice as precise as those without the SNe Ia discovered with HST. Our constraints are consistent with the static nature of and value of w expected for a cosmological constant (i.e., w(0) = -1.0, dw/dz = 0) and are inconsistent with very rapid evolution of dark energy. We address consequences of evolving dark energy for the fate of the universe.
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收藏
页码:665 / 687
页数:23
相关论文
共 92 条
[31]   Colloquium: Measuring and understanding the universe [J].
Freedman, WL ;
Turner, MS .
REVIEWS OF MODERN PHYSICS, 2003, 75 (04) :1433-1447
[32]   A novel image reconstruction method applied to deep Hubble Space Telescope images [J].
Fruchter, AS ;
Hook, RN .
APPLICATIONS OF DIGITAL IMAGE PROCESSING XX, 1997, 3164 :120-125
[33]   Supernova limits on the cosmic equation of state [J].
Garnavich, PM ;
Jha, S ;
Challis, P ;
Clocchiatti, A ;
Diercks, A ;
Filippenko, AV ;
Gilliland, RL ;
Hogan, CJ ;
Kirshner, RP ;
Leibundgut, B ;
Phillips, MM ;
Reiss, D ;
Riess, AG ;
Schmidt, BP ;
Schommer, RA ;
Smith, RC ;
Spyromilio, J ;
Stubbs, C ;
Suntzeff, NB ;
Tonry, J ;
Carroll, SM .
ASTROPHYSICAL JOURNAL, 1998, 509 (01) :74-79
[34]  
GARNAVICH PM, 2002, BAAS, V34, P1233
[35]   The Great Observatories Origins Deep Survey: Initial results from optical and near-infrared imaging [J].
Giavalisco, M ;
Ferguson, HC ;
Koekemoer, AM ;
Dickinson, M ;
Alexander, DM ;
Bauer, FE ;
Bergeron, J ;
Biagetti, C ;
Brandt, WN ;
Casertano, S ;
Cesarsky, C ;
Chatzichristou, E ;
Conselice, C ;
Cristiani, S ;
Da Costa, L ;
Dahlen, T ;
de Mello, D ;
Eisenhardt, P ;
Erben, T ;
Fall, SM ;
Fassnacht, C ;
Fosbury, R ;
Fruchter, A ;
Gardner, JP ;
Grogin, N ;
Hook, RN ;
Hornschemeier, AE ;
Idzi, R ;
Jogee, S ;
Kretchmer, C ;
Laidler, V ;
Lee, KS ;
Livio, M ;
Lucas, R ;
Madau, P ;
Mobasher, B ;
Moustakas, LA ;
Nonino, M ;
Padovani, P ;
Papovich, C ;
Park, Y ;
Ravindranath, S ;
Renzini, A ;
Richardson, M ;
Riess, A ;
Rosati, P ;
Schirmer, M ;
Schreier, E ;
Somerville, RS ;
Spinrad, H .
ASTROPHYSICAL JOURNAL, 2004, 600 (02) :L93-L98
[36]  
Gilliland R.L., 2002, HST Calibration Workshop, P61
[37]   High-redshift supernovae in the Hubble Deep Field [J].
Gilliland, RL ;
Nugent, PE ;
Phillips, MM .
ASTROPHYSICAL JOURNAL, 1999, 521 (01) :30-49
[38]   Measuring the properties of extragalactic dust and implications for the Hubble diagram [J].
Goobar, A ;
Bergström, L ;
Mörtsell, E .
ASTRONOMY & ASTROPHYSICS, 2002, 384 (01) :1-10
[39]   Q-LET - quick lensing estimation tool: an application to SN2003es [J].
Gunnarsson, C .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2004, (03) :23-37
[40]   The redshift distribution and luminosity functions of galaxies in the hubble deep field [J].
Gwyn, SDJ ;
Hartwick, FDA .
ASTROPHYSICAL JOURNAL, 1996, 468 (02) :L77-L80