Abstract
One of the remarkable differences between renormalizable quantum gravity with four-derivative action and its superrenormalizable polynomial generalizations is that the latter admit a more sophisticated particle mass spectrum. Already in the simplest superrenormalizable case, the theory has a six-derivative Lagrangian, admitting either a real or complex spectrum of masses. In the case of a real spectrum, there are the graviton, massive unphysical ghosts, and normal particles with masses exceeding the ones of the ghosts. It is also possible to have pairs of complex conjugate massive ghost-like particles. We show that in both cases, these theories do not admit a Källén-Lehmann representation and do not satisfy the positivity criterium of consistency in terms of the fields associated to those particles. In the main part of the work, using a relatively simple Euclidean scalar toy model, we show that the theory with complex spectrum forms bound states confining unphysical massive excitations into a normal composite particle. Finally, we discuss the cosmological implications of such a ghost confinement.
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Details
; Krein, G. 2
; Pardina, M. 1
; Shapiro, I. 3
1 Centro de Astropartículas y Física de Altas Energías, Departamento de Física Teórica, Universidad de Zaragoza, E-50009, Zaragoza, Spain (ROR: https://ror.org/012a91z28) (GRID: grid.11205.37) (ISNI: 0000 0001 2152 8769)
2 Instituto de Física Teórica, Universidade Estadual Paulista, Rua Dr. Bento Teobaldo Ferraz, 271 — Bloco II, 01140-070, São Paulo, SP, Brazil (ROR: https://ror.org/00987cb86) (GRID: grid.410543.7) (ISNI: 0000 0001 2188 478X)
3 Departamento de Física, ICE, Universidade Federal de Juiz de Fora, Campus Universitário, 36036-900, Juiz de Fora, MG, Brazil (ROR: https://ror.org/04yqw9c44) (GRID: grid.411198.4) (ISNI: 0000 0001 2170 9332)




