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arXiv:hep-ph/0106091·v1·High Energy Physics — Phenomenology

Vacuum decay in quantum field theory

Esteban Calzetta🇦🇷 · Albert Roura🇪🇸 · Enric Verdaguer🇪🇸

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Abstract

We study the contribution to vacuum decay in field theory due to the interaction between the long and short-wavelength modes of the field. The field model considered consists of a scalar field of mass with a cubic term in the potential. The dynamics of the long-wavelength modes becomes diffusive in this interaction. The diffusive behaviour is described by the reduced Wigner function that characterizes the state of the long-wavelength modes. This function is obtained from the whole Wigner function by integration of the degrees of freedom of the short-wavelength modes. The dynamical equation for the reduced Wigner function becomes a kind of Fokker-Planck equation which is solved with suitable boundary conditions enforcing an initial metastable vacuum state trapped in the potential well. As a result a finite activation rate is found, even at zero temperature, for the formation of true vacuum bubbles of size . This effect makes a substantial contribution to the total decay rate.

Comments: 27 pages, RevTeX, 1 figure (uses epsf.sty)

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