Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity

In this note we compute the 1-loop partition function of spin-$s$ fields on Euclidean de Sitter space $S^{2n+1}$ using the quasinormal mode method. Instead of computing the quasinormal mode frequencies from scratch, we use the analytic continuation prescription $L_{\text{AdS}}\to iL_{\text{dS}}$,...

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Main Author: Victoria L. Martin, Andrew Svesko
Format: Article
Language:English
Published: SciPost 2020-09-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.9.3.039
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spelling doaj-f7ef9d3a93824698a8dfa1bf7886514a2020-11-25T03:05:32ZengSciPostSciPost Physics2542-46532020-09-019303910.21468/SciPostPhys.9.3.039Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravityVictoria L. Martin, Andrew SveskoIn this note we compute the 1-loop partition function of spin-$s$ fields on Euclidean de Sitter space $S^{2n+1}$ using the quasinormal mode method. Instead of computing the quasinormal mode frequencies from scratch, we use the analytic continuation prescription $L_{\text{AdS}}\to iL_{\text{dS}}$, appearing in the dS/CFT correspondence, and Wick rotate the normal mode frequencies of fields on thermal $\text{AdS}_{2n+1}$ into the quasinormal mode frequencies of fields on de Sitter space. We compare the quasinormal mode and heat kernel methods of calculating 1-loop determinants, finding exact agreement, and furthermore explicitly relate these methods via a sum over the conformal dimension. We discuss how the Wick rotation of normal modes on thermal $\text{AdS}_{2n+1}$ can be generalized to calculating 1-loop partition functions on the thermal spherical quotients $S^{2n+1}/\mathbb{Z}_{p}$. We further show that the quasinormal mode frequencies encode the group theoretic structure of the spherical spacetimes in question, analogous to the recent analysis made for thermal AdS in (1910.07607) and (1910.11913).https://scipost.org/SciPostPhys.9.3.039
collection DOAJ
language English
format Article
sources DOAJ
author Victoria L. Martin, Andrew Svesko
spellingShingle Victoria L. Martin, Andrew Svesko
Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
SciPost Physics
author_facet Victoria L. Martin, Andrew Svesko
author_sort Victoria L. Martin, Andrew Svesko
title Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
title_short Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
title_full Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
title_fullStr Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
title_full_unstemmed Higher spin partition functions via the quasinormal mode method in de Sitter quantum gravity
title_sort higher spin partition functions via the quasinormal mode method in de sitter quantum gravity
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2020-09-01
description In this note we compute the 1-loop partition function of spin-$s$ fields on Euclidean de Sitter space $S^{2n+1}$ using the quasinormal mode method. Instead of computing the quasinormal mode frequencies from scratch, we use the analytic continuation prescription $L_{\text{AdS}}\to iL_{\text{dS}}$, appearing in the dS/CFT correspondence, and Wick rotate the normal mode frequencies of fields on thermal $\text{AdS}_{2n+1}$ into the quasinormal mode frequencies of fields on de Sitter space. We compare the quasinormal mode and heat kernel methods of calculating 1-loop determinants, finding exact agreement, and furthermore explicitly relate these methods via a sum over the conformal dimension. We discuss how the Wick rotation of normal modes on thermal $\text{AdS}_{2n+1}$ can be generalized to calculating 1-loop partition functions on the thermal spherical quotients $S^{2n+1}/\mathbb{Z}_{p}$. We further show that the quasinormal mode frequencies encode the group theoretic structure of the spherical spacetimes in question, analogous to the recent analysis made for thermal AdS in (1910.07607) and (1910.11913).
url https://scipost.org/SciPostPhys.9.3.039
work_keys_str_mv AT victorialmartinandrewsvesko higherspinpartitionfunctionsviathequasinormalmodemethodindesitterquantumgravity
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