Coulomb branch quantization and abelianized monopole bubbling

Abstract We develop an approach to the study of Coulomb branch operators in 3D N $$ \mathcal{N} $$ = 4 gauge theories and the associated quantization structure of their Coulomb branches. This structure is encoded in a one-dimensional TQFT subsector of the full 3D theory, which we describe by combini...

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Main Authors: Mykola Dedushenko, Yale Fan, Silviu S. Pufu, Ran Yacoby
Format: Article
Language:English
Published: SpringerOpen 2019-10-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP10(2019)179
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spelling doaj-d9d99e915d984a388bdd2a04b2e9ec032020-11-25T02:25:45ZengSpringerOpenJournal of High Energy Physics1029-84792019-10-0120191019610.1007/JHEP10(2019)179Coulomb branch quantization and abelianized monopole bubblingMykola Dedushenko0Yale Fan1Silviu S. Pufu2Ran Yacoby3Walter Burke Institute for Theoretical Physics, California Institute of TechnologyDepartment of Physics, Princeton UniversityDepartment of Physics, Princeton UniversityDepartment of Particle Physics and Astrophysics, Weizmann Institute of ScienceAbstract We develop an approach to the study of Coulomb branch operators in 3D N $$ \mathcal{N} $$ = 4 gauge theories and the associated quantization structure of their Coulomb branches. This structure is encoded in a one-dimensional TQFT subsector of the full 3D theory, which we describe by combining several techniques and ideas. The answer takes the form of an associative and noncommutative star product algebra on the Coulomb branch. For “good” and “ugly” theories (according to the Gaiotto-Witten classification), we also exhibit a trace map on this algebra, which allows for the computation of correlation functions and, in particular, guarantees that the star product satisfies a truncation condition. This work extends previous work on abelian theories to the non-abelian case by quantifying the monopole bubbling that describes screening of GNO boundary conditions. In our approach, monopole bubbling is determined from the algebraic consistency of the OPE. This also yields a physical proof of the Bullimore-Dimofte-Gaiotto abelianization description of the Coulomb branch.http://link.springer.com/article/10.1007/JHEP10(2019)179Extended SupersymmetrySupersymmetric Gauge TheorySupersymmetry and DualitySolitons Monopoles and Instantons
collection DOAJ
language English
format Article
sources DOAJ
author Mykola Dedushenko
Yale Fan
Silviu S. Pufu
Ran Yacoby
spellingShingle Mykola Dedushenko
Yale Fan
Silviu S. Pufu
Ran Yacoby
Coulomb branch quantization and abelianized monopole bubbling
Journal of High Energy Physics
Extended Supersymmetry
Supersymmetric Gauge Theory
Supersymmetry and Duality
Solitons Monopoles and Instantons
author_facet Mykola Dedushenko
Yale Fan
Silviu S. Pufu
Ran Yacoby
author_sort Mykola Dedushenko
title Coulomb branch quantization and abelianized monopole bubbling
title_short Coulomb branch quantization and abelianized monopole bubbling
title_full Coulomb branch quantization and abelianized monopole bubbling
title_fullStr Coulomb branch quantization and abelianized monopole bubbling
title_full_unstemmed Coulomb branch quantization and abelianized monopole bubbling
title_sort coulomb branch quantization and abelianized monopole bubbling
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2019-10-01
description Abstract We develop an approach to the study of Coulomb branch operators in 3D N $$ \mathcal{N} $$ = 4 gauge theories and the associated quantization structure of their Coulomb branches. This structure is encoded in a one-dimensional TQFT subsector of the full 3D theory, which we describe by combining several techniques and ideas. The answer takes the form of an associative and noncommutative star product algebra on the Coulomb branch. For “good” and “ugly” theories (according to the Gaiotto-Witten classification), we also exhibit a trace map on this algebra, which allows for the computation of correlation functions and, in particular, guarantees that the star product satisfies a truncation condition. This work extends previous work on abelian theories to the non-abelian case by quantifying the monopole bubbling that describes screening of GNO boundary conditions. In our approach, monopole bubbling is determined from the algebraic consistency of the OPE. This also yields a physical proof of the Bullimore-Dimofte-Gaiotto abelianization description of the Coulomb branch.
topic Extended Supersymmetry
Supersymmetric Gauge Theory
Supersymmetry and Duality
Solitons Monopoles and Instantons
url http://link.springer.com/article/10.1007/JHEP10(2019)179
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