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Late-time cosmological phase transitionsIt is shown that the potential galaxy formation and large scale structure problems of objects existing at high redshifts (Z approx. greater than 5), structures existing on scales of 100 M pc as well as velocity flows on such scales, and minimal microwave anisotropies ((Delta)T/T) (approx. less than 10(exp -5)) can be solved if the seeds needed to generate structure form in a vacuum phase transition after decoupling. It is argued that the basic physics of such a phase transition is no more exotic than that utilized in the more traditional GUT scale phase transitions, and that, just as in the GUT case, significant random Gaussian fluctuations and/or topological defects can form. Scale lengths of approx. 100 M pc for large scale structure as well as approx. 1 M pc for galaxy formation occur naturally. Possible support for new physics that might be associated with such a late-time transition comes from the preliminary results of the SAGE solar neutrino experiment, implying neutrino flavor mixing with values similar to those required for a late-time transition. It is also noted that a see-saw model for the neutrino masses might also imply a tau neutrino mass that is an ideal hot dark matter candidate. However, in general either hot or cold dark matter can be consistent with a late-time transition.
Document ID
19930033648
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Schramm, David N.
(Chicago Univ.; NASA/Fermilab Astrophysics Center Batavia, IL, United States)
Date Acquired
August 15, 2013
Publication Date
January 1, 1991
Publication Information
Publication: In: Primordial nucleosynthesis and evolution of early universe; Proceedings of the International Conference, Tokyo, Japan, Sept. 4-8, 1990 (A93-17626 05-90)
Publisher: Kluwer Academic Publishers
Subject Category
Astrophysics
Accession Number
93A17645
Funding Number(s)
CONTRACT_GRANT: NAGW-1340
CONTRACT_GRANT: NSF AST-88-22595
CONTRACT_GRANT: NAGW-1321
Distribution Limits
Public
Copyright
Other

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