High-redshift Galaxies from Early JWST Observations: Constraints on Dark Energy Models

被引:47
作者
Menci, N. [1 ]
Castellano, M. [1 ]
Santini, P. [1 ]
Merlin, E. [1 ]
Fontana, A. [1 ]
Shankar, F. [2 ]
机构
[1] INAF Osservatorio Astron Roma, Via Frascati 33, I-00078 Monte Porzio Catone, Italy
[2] Univ Southampton, Sch Phys & Astron, Southampton SO17 1BJ, Hants, England
关键词
HALO MASS FUNCTION; MATTER; COSMOLOGY;
D O I
10.3847/2041-8213/ac96e9
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Early observations with JWST have led to the discovery of an unexpectedly large density (stellar-mass density rho (*) approximate to 10(6) M (circle dot) Mpc(-3)) of massive galaxies (stellar masses M (*) >= 10(10.5) M (circle dot)) at extremely high redshifts z approximate to 10. While such a result is based on early measurements that are still affected by uncertainties currently under consideration by several observational groups, its confirmation would have a strong impact on cosmology. Here we show that-under the most conservative assumptions and independently of the baryon physics involved in galaxy formation-such galaxy abundance is not only in tension with the standard ?CDM cosmology but provides extremely tight constraints on the expansion history of the universe and on the growth factors corresponding to a wide class of Dynamical Dark Energy (DDE) models. Adopting a parameterization w = w (0) + w ( a )(1 - a) for the evolution of the DDE equation of the state parameter w with the expansion factor a, we derive constraints on combinations of (w (0), w ( a )) that rule out with confidence level >2 sigma a major portion of the parameter space (w (0), w ( a )) allowed (or even favored) by existing cosmological probes.
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页数:4
相关论文
共 42 条
  • [1] Computation of the halo mass function using physical collapse parameters: application to non-standard cosmologies
    Achitouv, I.
    Wagner, C.
    Weller, J.
    Rasera, Y.
    [J]. JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2014, (10):
  • [2] Non-Gaussian halo mass function and non-spherical halo collapse: theory vs. simulations
    Achitouv, Ixandra E.
    Corasaniti, Pier Stefano
    [J]. JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2012, (02):
  • [3] Planck 2015 results XIII. Cosmological parameters
    Ade, P. A. R.
    Aghanim, N.
    Arnaud, M.
    Ashdown, M.
    Aumont, J.
    Baccigalupi, C.
    Banday, A. J.
    Barreiro, R. B.
    Bartlett, J. G.
    Bartolo, N.
    Battaner, E.
    Battye, R.
    Benabed, K.
    Benoit, A.
    Benoit-Levy, A.
    Bernard, J. -P.
    Bersanelli, M.
    Bielewicz, P.
    Bock, J. J.
    Bonaldi, A.
    Bonavera, L.
    Bond, J. R.
    Borrill, J.
    Bouchet, F. R.
    Boulanger, F.
    Bucher, M.
    Burigana, C.
    Butler, R. C.
    Calabrese, E.
    Cardoso, J. -F.
    Catalano, A.
    Challinor, A.
    Chamballu, A.
    Chary, R. -R.
    Chiang, H. C.
    Chluba, J.
    Christensen, P. R.
    Church, S.
    Clements, D. L.
    Colombi, S.
    Colombo, L. P. L.
    Combet, C.
    Coulais, A.
    Crill, B. P.
    Curto, A.
    Cuttaia, F.
    Danese, L.
    Davies, R. D.
    Davis, R. J.
    de Bernardis, P.
    [J]. ASTRONOMY & ASTROPHYSICS, 2016, 594
  • [4] Planck 2018 results: VI. Cosmological parameters
    Aghanim, N.
    Akrami, Y.
    Ashdown, M.
    Aumont, J.
    Baccigalupi, C.
    Ballardini, M.
    Banday, A. J.
    Barreiro, R. B.
    Bartolo, N.
    Basak, S.
    Battye, R.
    Benabed, K.
    Bernard, J. -P.
    Bersanelli, M.
    Bielewicz, P.
    Bock, J. J.
    Bond, J. R.
    Borrill, J.
    Bouchet, F. R.
    Boulanger, F.
    Bucher, M.
    Burigana, C.
    Butler, R. C.
    Calabrese, E.
    Cardoso, J. -F.
    Carron, J.
    Challinor, A.
    Chiang, H. C.
    Chluba, J.
    Colombo, L. P. L.
    Combet, C.
    Contreras, D.
    Crill, B. P.
    Cuttaia, F.
    de Bernardis, P.
    de Zotti, G.
    Delabrouille, J.
    Delouis, J. -M.
    Di Valentino, E.
    Diego, J. M.
    Dore, O.
    Douspis, M.
    Ducout, A.
    Dupac, X.
    Dusini, S.
    Efstathiou, G.
    Elsner, F.
    Ensslin, T. A.
    Eriksen, H. K.
    Fantaye, Y.
    [J]. ASTRONOMY & ASTROPHYSICS, 2020, 641
  • [5] THE STATISTICS OF PEAKS OF GAUSSIAN RANDOM-FIELDS
    BARDEEN, JM
    BOND, JR
    KAISER, N
    SZALAY, AS
    [J]. ASTROPHYSICAL JOURNAL, 1986, 304 (01) : 15 - 61
  • [6] Dark matter halo merger histories beyond cold dark matter - I. Methods and application to warm dark matter
    Benson, Andrew J.
    Farahi, Arya
    Cole, Shaun
    Moustakas, Leonidas A.
    Jenkins, Adrian
    Lovell, Mark
    Kennedy, Rachel
    Helly, John
    Frenk, Carlos
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2013, 428 (02) : 1774 - 1789
  • [7] Boyer M. L., 2022, RNAAS, V6, P191, DOI [DOI 10.3847/2515-5172/AC923A, 10.3847/2515-5172/ac923a]
  • [8] Boylan-Kolchin M, 2023, Arxiv, DOI arXiv:2208.01611
  • [9] Limits of quintessence
    Caldwell, RR
    Linder, EV
    [J]. PHYSICAL REVIEW LETTERS, 2005, 95 (14)
  • [10] Accelerating universes with scaling dark matter
    Chevallier, M
    Polarski, D
    [J]. INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2001, 10 (02): : 213 - 223