An effective theory for higher-dimensional black holes and applications to metastable antibranes
Nam Nguyen

TL;DR
This paper applies the blackfold effective theory to study metastable antibranes in warped throats, providing new evidence for their existence, analyzing their stability, and exploring thermal transitions in higher-dimensional black hole models.
Contribution
It introduces the blackfold formalism to analyze metastable antibranes, offering new supergravity solutions and stability insights for anti-D3 and anti-M2 branes in warped geometries.
Findings
Confirmed metastable states at the tip of KS and CGLP throats.
Found classical stability of the KPV state under perturbations.
Discovered exotic thermal transition patterns of the KP state.
Abstract
Despite their consequential applications, metastable states of antibranes in warped throats are not yet fully understood. In this thesis, we provide new information on various aspects of these metastable antibranes through applications of the blackfold effective theory for higher-dimensional black holes. As concrete examples, we study the conjectured metastable state of polarised anti-D3 branes at the tip of the Klebanov-Strassler (KS) throat in type IIB supergravity and the analogous state of polarised anti-M2 branes at the tip of the Cvetic-Gibbons-Lu-Pope (CGLP) throat in eleven-dimensional supergravity. For anti-D3 branes in KS throat, we provide novel evidence for the existence of the metastable state exactly where no-go theorems are lifted. In the extremal limit, we recover directly in supergravity the metastable states originally discovered by Kachru, Pearson, and Verlinde…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Quantum Electrodynamics and Casimir Effect
