• Open Access

Unitarity, stability, and loops of unstable ghosts

John F. Donoghue and Gabriel Menezes
Phys. Rev. D 100, 105006 – Published 12 November 2019

Abstract

We present a new understanding of the unstable ghostlike resonance which appears in theories such as quadratic gravity and Lee-Wick type theories. Quantum corrections make this resonance unstable, such that it does not appear in the asymptotic spectrum. We prove that these theories are unitary to all orders. Unitarity is satisfied by the inclusion of only cuts from stable states in the unitarity sum. This removes the need to consider this as a ghost state in the unitarity sum. However, we often use a narrow-width approximation where we do include cuts through unstable states and ignore cuts through the stable decay products. If we do this with the unstable ghost resonance at one loop, we get the correct answer only by using a contour which was originally defined by Lee and Wick. The quantum effects also provide damping in both the Feynman and the retarded propagators, leading to stability under perturbations.

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  • Received 22 August 2019

DOI:https://doi.org/10.1103/PhysRevD.100.105006

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article’s title, journal citation, and DOI. Funded by SCOAP3.

Published by the American Physical Society

Physics Subject Headings (PhySH)

Particles & FieldsGravitation, Cosmology & Astrophysics

Authors & Affiliations

John F. Donoghue*

  • Department of Physics, University of Massachusetts Amherst, Amherst, Massachusetts 01003, USA

Gabriel Menezes

  • Department of Physics, University of Massachusetts Amherst, Amherst, Massachusetts 01003, USA and Departamento de Física, Universidade Federal Rural do Rio de Janeiro, 23897-000 Seropédica, RJ, Brazil

  • *donoghue@physics.umass.edu
  • gabrielmenezes@ufrrj.br

Article Text

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Issue

Vol. 100, Iss. 10 — 15 November 2019

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