Published December 1989 | Version v1
Report Restricted

Presented at the International Nuclear Physics Conference, Sao Paulo, Brazil, 20-26 August 1989

Description

Nuclear physics has provided one of two critical observational tests of all Big Bang cosmology, namely Big Bang Nucleosynthesis. Furthermore, this same nuclear physics input enables a prediction to be made about one of the most fundamental physics questions of all, the number of elementary particle families. The standard Big Bang Nucleosynthesis arguments are reviewed. The primordial He abundance is inferred from He-C and He-N and He-O correlations. The strengthened Li constraint as well as D-2 plus He-3 are used to limit the baryon density. This limit is the key argument behind the need for non-baryonic dark matter. The allowed number of neutrino families, N(nu), is delineated using the new neutron lifetime value of tau(n) = 890 + or - 4s (tau(1/2) = 10.3 min). The formal statistical result is N(nu) = 2.6 + or - 0.3 (1 sigma), providing a reasonable fit (1.3 sigma) to three families but making a fourth light (m(nu) less than or equal to 10 MeV) neutrino family exceedly unlikely (approx. greater than 4.7 sigma). It is also shown that uncertainties induced by postulating a first-order quark-baryon phase transition do not seriously affect the conclusions

Availability note (English)

MF available from INIS under the Report Number; NTIS, PC A03/MF A01.

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Additional details

Publishing Information

Imprint Pagination
13 p.
Report number
N--90-14167

Conference

Title
International nuclear physics and cosmology conference.
Dates
20-26 Aug 1989.
Place
Sao Paulo (Brazil).