Non-perturbative aspects of gauge and string theories and their holographic relations
Marine Samsonyan

TL;DR
This thesis explores non-perturbative phenomena in gauge and string theories, including instantons, partition functions, and holographic dualities, revealing rich topological and symmetry structures in various supersymmetric and supergravity models.
Contribution
It provides new computations of partition functions in 5D supersymmetric theories, analyzes instanton effects in string theory, and investigates holographic relations in AdS/CFT correspondence with detailed group-theoretic methods.
Findings
Partition function reproduces Poincare polynomial of instanton moduli space
Identification of marginal deformations and monopole operators in supergravity
Doubleton spectrum explains higher spin symmetry enhancement
Abstract
In this thesis we discuss non-perturbative phenomena emerging in gauge and in string/supergravity theories. We compute the partition function of 5D minimal supersymmetric U(1) gauge theory with extra adjoint matter in general Omega-background. These N=2^* theories are massive deformations of N=4 SYM and can be thought of as a minimal supersymmetric five dimensional theory compactified on a circle. Such partition functions encode very rich topological information. We show that this partition function at some special values of the parameters directly reproduces the generating function for the Poincare` polynomial of the moduli space of instantons. We discuss the basic aspects of worldsheet and penta-brane instantons as well as (unoriented) D-brane instantons and threshold corrections to BPS-saturated couplings in superstring theories. We consider non-perturbative superpotentials generated…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Particle physics theoretical and experimental studies
