TY - JOUR
T1 - Cosmological solutions of the lithium problem
AU - Mathews, G. J.
AU - Kedia, A.
AU - Sasankan, N.
AU - Kusakabe, M.
AU - Luo, Y.
AU - Kajino, T.
AU - Yamazaki, D.
AU - Makki, T.
AU - El Eid, M.
N1 - Publisher Copyright:
© SAIt 2020.
PY - 2020
Y1 - 2020
N2 - The observationally inferred abundance of primordial lithium remains at about a factor of three below the abundance predicted by standard big bang nucleosynthesis (BBN). The resolution of this dilemma can be either astrophysical (stars destroy lithium after BBN), nuclear (reactions destroy lithium during BBN), or cosmological, i.e. new physics beyond the standard BBN is responsible for destroying lithium. Here, we overview a variety of possible cosmological solutions, and their shortcomings. For example, we examine the possibility of physical processes that modify the velocity distribution of particles from the usually assumed Maxwell-Boltzmann statistics. A physical justification for this is an inhomogeneous spatial distribution of domains of primordial magnetic field strength as a means to reduce the primordial lithium abundance. Another possibility is that scattering with the mildly relativistic electrons in the background plasma alters the baryon distribution to one resembling a Fermi-Dirac distribution. We show that neither of these possibilities can resolve the lithium problem. A number of alternate hybrid models are discussed including a mix of neutrino degeneracy, unified dark matter, axion cooling, and the presence of decaying and/or charged supersymmetric particles.
AB - The observationally inferred abundance of primordial lithium remains at about a factor of three below the abundance predicted by standard big bang nucleosynthesis (BBN). The resolution of this dilemma can be either astrophysical (stars destroy lithium after BBN), nuclear (reactions destroy lithium during BBN), or cosmological, i.e. new physics beyond the standard BBN is responsible for destroying lithium. Here, we overview a variety of possible cosmological solutions, and their shortcomings. For example, we examine the possibility of physical processes that modify the velocity distribution of particles from the usually assumed Maxwell-Boltzmann statistics. A physical justification for this is an inhomogeneous spatial distribution of domains of primordial magnetic field strength as a means to reduce the primordial lithium abundance. Another possibility is that scattering with the mildly relativistic electrons in the background plasma alters the baryon distribution to one resembling a Fermi-Dirac distribution. We show that neither of these possibilities can resolve the lithium problem. A number of alternate hybrid models are discussed including a mix of neutrino degeneracy, unified dark matter, axion cooling, and the presence of decaying and/or charged supersymmetric particles.
KW - Abundances
KW - Cosmology: early Universe
KW - Cosmology: primordial nucleosynthesis
KW - Nuclear reactions
KW - Nucleosynthesis
KW - Stars: abundances
UR - https://www.scopus.com/pages/publications/85104070815
M3 - 会议文章
AN - SCOPUS:85104070815
SN - 1824-016X
VL - 91
SP - 29
EP - 34
JO - Memorie della Societa Astronomica Italiana - Journal of the Italian Astronomical Society
JF - Memorie della Societa Astronomica Italiana - Journal of the Italian Astronomical Society
IS - 1-2
T2 - 2019 Lithium in the Universe: to Be or not to Be?
Y2 - 18 November 2019 through 22 November 2019
ER -