Continuum effective field theories, gravity, and holography
Metadatos
Mostrar el registro completo del ítemEditorial
American Physical Society
Fecha
2023-05-19Referencia bibliográfica
Sylvain Fichet, Eugenio Megías, and Mariano Quirós. Continuum effective field theories, gravity, and holography. Phys. Rev. D 107, 096016. [DOI: 10.1103/PhysRevD.107.096016]
Patrocinador
Junta de Andalucía-Consejería de Economía y Conocimiento 2014–2020 Operational Programme A-FQM-178-UGR18; SAIFR 2016/01343-7, MCIN/AEI/10.13039/501100011033, PID2020-114767GB-I00; Generalitat de Catalunya 2021SGR00649; Ministerio de Ciencia e Innovación PID2020-115845GB-100, RYC-2016-20678 MICINN; European Regional Development Fund ERDF; Junta de Andalucía FQM-225Resumen
We examine effective field theories (EFTs) with a continuum sector in the presence of gravity. We first explain, via arguments based on central charge and species scale, that an EFT with a free continuum cannot consistently couple to standard (i.e., 4D Einstein) gravity. It follows that EFTs with a free or nearly free continuum must have either a finite number of degrees of freedom or nonstandard gravity. The latter claim is realized for holographically defined continuum models. We demonstrate this by computing the deviations from standard gravity in a specific 5D scalar-gravity system that gives rise to a gapped continuum (i.e., the linear dilaton background). We find an R-2 deviation from the Newtonian potential. At finite temperature, we find an energy density with matterlike behavior in the brane Friedmann equation, holographically induced from the bulk geometry. Thus, remarkably, a braneworld living in the linear dilaton background automatically contains dark matter. We also present a slightly more evolved asymptotically AdS linear dilaton model, for which the deviations exhibit a transition between AdS and linear dilaton behaviors.





