Light Strings and Strong Coupling in F-theory
Max Wiesner

TL;DR
This paper explores non-perturbative phenomena in F-theory compactifications, revealing strong coupling singularities linked to D3-brane strings and their implications for the structure of the scalar field space in N=1 theories.
Contribution
It identifies new strong coupling singularities in F-theory moduli space associated with D3-brane strings and relates them to the breakdown of perturbative expansions and the Emergent String Conjecture.
Findings
Discovery of strong coupling singularities in F-theory moduli space.
Connection between D3-brane strings and breakdown of perturbative heterotic string.
Implication that certain classical limits are obstructed in N=1 theories.
Abstract
We consider 4d N=1 theories arising from F-theory compactifications on elliptically-fibered Calabi-Yau four-folds and investigate the non-perturbative structure of their scalar field space beyond the large volume/large complex structure regime. We focus on regimes where the F-theory field space effectively reduces to the deformation space of the worldsheet theory of a critical string obtained from a wrapped D3-brane. In case that this critical string is a heterotic string with a simple GLSM description, we identify new strong coupling singularities in the interior of the F-theory field space. Whereas from the perturbative perspective these singularities manifest themselves through a breakdown of the perturbative -expansion, the dual GLSM perspective reveals that at the non-perturbative level these singularities correspond to loci in field space along which the worldsheet theory…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Particle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions
