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Nicola Rendell

Publications and source records attributed to Nicola Rendell.

2 recordsLinked to original sources

Infrared divergences for free quantum fields in cosmological spacetimes

We investigate the nature of infrared divergences for the free graviton and inflaton two-point functions in flat Friedman-Lema\^ıtre-Robertson-Walker spacetime. These divergences arise because the momentum integral for these two-point functions diverges in the infrared. It is straightforward to see that the power of the momentum in the integrand can be increased by $2$ in the infrared using large gauge transformations, which are sufficient for rendering these two-point functions infrared finite for slow-roll inflation. In other words, if the integrand of the momentum integral for these two-point functions behaves like $p^{-2ν}$, where $p$ is the momentum, in the infrared, then it can be made to behave like $p^{-2ν+2}$ by large gauge transformations. On the other hand, it is known that, if one smears these two-point functions in a gauge-invariant manner, the power of the momentum in the integrand is changed from $p^{-2ν}$ to $p^{-2ν+4}$. This fact suggests that the power of the momentum in the integrand for these two-point functions can be increased by $4$ using large gauge transformations. In this paper we show that this is indeed the case. Thus, the two-point functions for the graviton and inflaton fields can be made finite by large gauge transformations for a large class of potentials and states in single-field inflation.

gr-qc

Large-distance behaviour of the massless vector two-point function in de Sitter spacetime

We study the long-distance behaviour of the massless vector propagator in (n)-dimensional de Sitter spacetime, where $n \geq 4$. Specifically, we consider the massless limit of the vector propagator in the Stueckelberg theory, which is an extension of Proca theory, with an additional gauge-fixing term. We work to leading order in the de Sitter-invariant distance $Z$ to show that, in the large $Z$ limit, this propagator tends to a gauge dependent constant, where the gauge worked in is described by the Stueckelberg parameter $ξ$. In the Landau gauge, where $ξ=0$, this constant is found to be 0. This result is in agreement with the 4 dimensional case discussed by Youssef.

gr-qc