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The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories

We use brane techniques to study the space of vacua of abelian 3d $ \mathcal{N}=3 $ gauge theories. The coordinates on these spaces are the vevs of chiral monopole and meson operators, which are realized in the type IIB brane configuration of the theory by adding semi-infinite (1, k) strings or F1 s...

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Detalles Bibliográficos
Autor principal: Assel, Benjamin
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP08(2017)011
http://cds.cern.ch/record/2267557
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author Assel, Benjamin
author_facet Assel, Benjamin
author_sort Assel, Benjamin
collection CERN
description We use brane techniques to study the space of vacua of abelian 3d $ \mathcal{N}=3 $ gauge theories. The coordinates on these spaces are the vevs of chiral monopole and meson operators, which are realized in the type IIB brane configuration of the theory by adding semi-infinite (1, k) strings or F1 strings. The study of various brane setups allows us to determine a basis of chiral operators and chiral ring relations relevant to each branch of vacua, leading to the algebraic description of these branches. The method is mostly graphical and does not require actual computations. We apply it and provide explicit results in various examples. For linear quivers we find that the space of vacua has in general a collection of Coulomb-like branches, a Higgs branch and mixed branches. For circular quivers we find an extra branch, the geometric branch, parametrized by monopoles with equal magnetic charges in all U(1) nodes and meson operators. We explain how to include FI and mass deformations. We also study $ \mathcal{N}=3 $ theories realized with (p, q) 5-branes.
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spelling cern-22675572023-10-04T08:54:46Zdoi:10.1007/JHEP08(2017)011http://cds.cern.ch/record/2267557engAssel, BenjaminThe Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theorieshep-thParticle Physics - TheoryWe use brane techniques to study the space of vacua of abelian 3d $ \mathcal{N}=3 $ gauge theories. The coordinates on these spaces are the vevs of chiral monopole and meson operators, which are realized in the type IIB brane configuration of the theory by adding semi-infinite (1, k) strings or F1 strings. The study of various brane setups allows us to determine a basis of chiral operators and chiral ring relations relevant to each branch of vacua, leading to the algebraic description of these branches. The method is mostly graphical and does not require actual computations. We apply it and provide explicit results in various examples. For linear quivers we find that the space of vacua has in general a collection of Coulomb-like branches, a Higgs branch and mixed branches. For circular quivers we find an extra branch, the geometric branch, parametrized by monopoles with equal magnetic charges in all U(1) nodes and meson operators. We explain how to include FI and mass deformations. We also study $ \mathcal{N}=3 $ theories realized with (p, q) 5-branes.We use brane techniques to study the space of vacua of abelian 3d $\mathcal{N}=3$ gauge theories. The coordinates on these spaces are the vevs of chiral monopole and meson operators, which are realized in the type IIB brane configuration of the theory by adding semi-infinite $(1,k)$ strings or F1 strings. The study of various brane setups allows us to determine a basis of chiral operators and chiral ring relations relevant to each branch of vacua, leading to the algebraic description of these branches. The method is mostly graphical and does not require actual computations. We apply it and provide explicit results in various examples. For linear quivers we find that the space of vacua has in general a collection of Coulomb-like branches, a Higgs branch and mixed branches. For circular quivers we find an extra branch, the geometric branch, parametrized by monopoles with equal magnetic charges in all $U(1)$ nodes and meson operators. We explain how to include FI and mass deformations. We also study $\mathcal{N}=3$ theories realized with $(p,q)$ 5-branes.arXiv:1706.00793CERN-TH-2017-120oai:cds.cern.ch:22675572017-06-02
spellingShingle hep-th
Particle Physics - Theory
Assel, Benjamin
The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title_full The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title_fullStr The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title_full_unstemmed The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title_short The Space of Vacua of 3d $\mathcal{N}=3$ Abelian Theories
title_sort space of vacua of 3d $\mathcal{n}=3$ abelian theories
topic hep-th
Particle Physics - Theory
url https://dx.doi.org/10.1007/JHEP08(2017)011
http://cds.cern.ch/record/2267557
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