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Phys. Rev. D 24, 426–439 (1981)

Bose-Einstein condensation, spontaneous symmetry breaking, and gauge theories

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Joseph I. Kapusta
Theoretical Division, Los Alamos National Laboratory, University of California, Los Alamos, New Mexico 87545

Received 19 December 1979; revised 26 March 1981; published in the issue dated 15 July 1981

Bosonic chemical potentials for a variety of relativistic field theories are introduced via the methods of functional integrals with the aim of studying the relationship between Bose-Einstein condensation and spontaneous symmetry breaking. The models studied include the noninteracting and the self-interacting charged scalar field, scalar electrodynamics and the Higgs model, and the Weinberg-Salam model. In general the chemical potential acts as an effective symmetry-breaking parameter although the phase diagrams for the two cases (m2<0 and m2>0) look very different. It is found that the symmetry-restoring temperature in the Weinberg-Salam model increases with increasing electric charge density. Finally, the analysis of Jakobsen, Kon, and Segal of a conserved isotropic total angular momentum for the cosmic background radiation is shown to be erroneous.

© 1981 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevD.24.426
DOI:
10.1103/PhysRevD.24.426
PACS: