Published June 15, 1975 | Version v1
Journal article

Particle spectrum in model field theories from semiclassical functional integral techniques

  • 1. Institute for Advanced Study, Princeton, New Jersey (United States)

Description

We have used a semiclassical method developed earlier to compute the particle spectrum of a field theory in two-dimensional space--time defined by the (sine-Gordon) Lagrangian 1/2(par.delta/sub mu/phi)2 + (m4/lambda)(cos[(√lambda/m)phi]-1). For weak coupling we find a heavy particle, the soliton, corresponding to a peculiar classical field configuration and an antisoliton. Below the soliton--antisoliton threshold there are a large number of further states. They can be viewed either as soliton--antisoliton bound states or as bound states of n of the usual quanta of the theory. The ''elementary particle'' phi is the lowest of these. As the coupling increases, the higher states successively unbind, decaying into soliton--antisoliton pairs. At lambda/m2 = 4π, the ''elementary particle'' unbinds leaving only solitons and antisolitons for lambda/m2 > 4π. Comparing our semiclassical results with recent exact results of Coleman and with perturbation theory, we find that the semiclassical calculations are exact. This field theory seems similar to the hydrogen atom for which the Bohr--Sommerfeld quantization rules give the energy levels exactly. We also treat a phi4 theory in weak coupling and carry out a number of calculations which provide nontrivial illustrations of the semiclassical method. (authors)

Availability note (English)

Available on-line: https://doi.org/10.1103/PhysRevD.11.3424

Additional details

Identifiers

Publishing Information

Journal Title
Physical Review D
Journal Volume
11
Journal Issue
12
Journal Page Range
p. 3424-3450
ISSN
2470-0010