The deuteron confronts big bang nucleosynthesis

被引:7
|
作者
Fuller, GM
Cardall, CY
机构
[1] Department of Physics, University of California, San Diego
基金
美国国家科学基金会;
关键词
D O I
10.1016/S0920-5632(96)00485-9
中图分类号
O412 [相对论、场论]; O572.2 [粒子物理学];
学科分类号
摘要
Recent determinations of the deuterium abundance, H-2/H, in high redshift Lyman limit hydrogen clouds challenge the usual picture of primordial nucleosynthesis based on ''concordance'' of the calculated light element (H-2, He-3, (4)Ke, Li-7) nucleosynthesis yields with the observationally-inferred abundances of these species. Concordance implies that all light element yields can be made to agree with the observationally-inferred abundances (within errors) for single global specifications of the baryon-to-photon ratio, eta; lepton number; neutron lifetime; and expansion rate (or equivalently, effective number of light neutrino degrees of freedom N-v). Though one group studying Lyman limit systems obtains a high value of H-2/H (similar to 2 x 10(-4)), another group finds consistently low values (similar to 2 x 10(-5)). In the former case, concordance for N-v = 3 is readily attained for the current observationally-inferred abundances of He-4 and Li-7. But if the latter case represents the primordial deuterium abundance, then concordance for any N-v is impossible unless the primordial value of Li-7/H is considerably larger than the abundance of lithium as measured in old, hot Pop II halo stars. Furthermore, concordance with N-v = 3 is possible for low H-2/H only if either (1) the primordial He-4 abundance has been significantly underestimated, or (2) new neutrino sector physics is invoked. We argue that systematic underestimation of both the Li-7 and He-4 primordial abundances is the likely resolution of this problem, a conclusion which is strengthened by new results on He-4.
引用
收藏
页码:71 / 75
页数:5
相关论文
共 50 条
  • [21] Big Bang Nucleosynthesis: an update
    Olive, Keith A.
    IX MEXICAN SCHOOL ON GRAVITATION AND MATHEMATICAL PHYSICS: COSMOLOGY FOR THE XXIST CENTURY, 2013, 1548 : 116 - 125
  • [22] Neutrinos and big bang nucleosynthesis
    Steigman, G
    PHYSICA SCRIPTA, 2005, T121 : 142 - 146
  • [23] Big bang nucleosynthesis: An update
    Olive, KA
    Scully, ST
    INTERNATIONAL JOURNAL OF MODERN PHYSICS A, 1996, 11 (03): : 409 - 428
  • [24] LiBeB and big bang nucleosynthesis
    Olive, KA
    Fields, BD
    LIBEB, COSMIC RAYS, AND RELATED X- AND GAMMA-RAYS, 1999, 171 : 36 - 47
  • [25] No crisis for big bang nucleosynthesis
    Kernan, PJ
    Sarkar, S
    PHYSICAL REVIEW D, 1996, 54 (06) : R3681 - R3685
  • [26] Big-bang nucleosynthesis
    K. A. Olive
    The European Physical Journal C - Particles and Fields, 2000, 15 (1-4): : 133 - 135
  • [27] Nucleosynthesis in the Big Bang and in stars
    Langanke, K
    Barnes, CA
    ADVANCES IN NUCLEAR PHYSICS, VOL 22, 1996, 22 : 173 - 263
  • [28] Deuterium and big bang nucleosynthesis
    Burles, S
    NUCLEAR PHYSICS A, 2000, 663 : 861C - 864C
  • [29] Big bang nucleosynthesis: Reprise
    Sarkar, S
    DARK MATTER IN ASTROPHYSICS AND PARTICLE PHYSICS 1998, 1999, : 108 - 130
  • [30] No crisis for big bang nucleosynthesis
    Kernan, P. J.
    Sarkar, S.
    Physical Review D Particles, Fields, Gravitation and Cosmology, 54 (06):