Giant Wilson loops and AdS2/dCFT1

被引:0
|
作者
Simone Giombi
Jiaqi Jiang
Shota Komatsu
机构
[1] Princeton University,Department of Physics
[2] School of Natural Sciences,undefined
[3] Institute for Advanced Study,undefined
关键词
AdS-CFT Correspondence; Conformal Field Theory; D-branes; Field Theories in Higher Dimensions;
D O I
暂无
中图分类号
学科分类号
摘要
The 1/2-BPS Wilson loop in N\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$ \mathcal{N} $$\end{document} = 4 supersymmetric Yang-Mills theory is an important and well-studied example of conformal defect. In particular, much work has been done for the correlation functions of operator insertions on the Wilson loop in the fundamental representation. In this paper, we extend such analyses to Wilson loops in the large-rank symmetric and antisymmetric representations, which correspond to probe D3 and D5 branes with AdS2× S2 and AdS2× S4 worldvolume geometries, ending at the AdS5 boundary along a one-dimensional contour. We first compute the correlation functions of protected scalar insertions from supersymmetric localization, and obtain a representation in terms of multiple integrals that are similar to the eigenvalue integrals of the random matrix, but with important differences. Using ideas from the Fermi Gas formalism and the Clustering method, we evaluate their large N limit exactly as a function of the ’t Hooft coupling. The results are given by simple integrals of polynomials that resemble the Q-functions of the Quantum Spectral Curve, with integration measures depending on the number of insertions. Next, we study the correlation functions of fluctuations on the probe D3 and D5 branes in AdS. We compute a selection of three- and four-point functions from perturbation theory on the D-branes, and show that they agree with the results of localization when restricted to supersymmetric kinematics. We also explain how the difference of the internal geometries of the D3 and D5 branes manifests itself in the localization computation.
引用
收藏
相关论文
共 50 条
  • [1] Giant Wilson loops and AdS2/dCFT1
    Giombi, Simone
    Jiang, Jiaqi
    Komatsu, Shota
    [J]. JOURNAL OF HIGH ENERGY PHYSICS, 2020, 2020 (11)
  • [2] Beyond AdS2/dCFT1: insertions in two Wilson loops
    Correa, Diego H.
    Faraggi, Alberto
    Mueck, Wolfgang
    Pando Zayas, Leopoldo A.
    Silva, Guillermo A.
    [J]. JOURNAL OF HIGH ENERGY PHYSICS, 2023, 2023 (10)
  • [3] Beyond AdS2/dCFT1: insertions in two Wilson loops
    Diego H. Correa
    Alberto Faraggi
    Wolfgang Mück
    Leopoldo A. Pando Zayas
    Guillermo A. Silva
    [J]. Journal of High Energy Physics, 2023
  • [4] Supersymmetric mixed boundary conditions in AdS2 and DCFT1 marginal deformations
    Diego H. Correa
    Victor I. Giraldo-Rivera
    Guillermo A. Silva
    [J]. Journal of High Energy Physics, 2020
  • [5] Supersymmetric mixed boundary conditions in AdS2 and DCFT1 marginal deformations
    Correa, Diego H.
    Giraldo-Rivera, Victor I.
    Silva, Guillermo A.
    [J]. JOURNAL OF HIGH ENERGY PHYSICS, 2020, 2020 (03)
  • [6] Wilson lines in AdS/dCFT
    Bonansea, Sara
    Idiab, Khalil
    Kristjansen, Charlotte
    Volk, Matthias
    [J]. PHYSICS LETTERS B, 2020, 806
  • [7] One-loop Wilson loops and the particle-interface potential in AdS/dCFT
    de Leeuw, Marius
    Ipsen, Asger C.
    Kristjansen, Charlotte
    Wilhelm, Matthias
    [J]. PHYSICS LETTERS B, 2017, 768 : 192 - 197
  • [8] Integrability and higher loops in AdS/dCFT correspondence
    Susaki, Y
    Takayama, Y
    Yoshida, K
    [J]. PHYSICS LETTERS B, 2005, 624 (1-2) : 115 - 124
  • [9] AdS2 duals to ADHM quivers with Wilson lines
    Yolanda Lozano
    Carlos Nunez
    Anayeli Ramirez
    Stefano Speziali
    [J]. Journal of High Energy Physics, 2021
  • [10] AdS2 duals to ADHM quivers with Wilson lines
    Lozano, Yolanda
    Nunez, Carlos
    Ramirez, Anayeli
    Speziali, Stefano
    [J]. JOURNAL OF HIGH ENERGY PHYSICS, 2021, 2021 (03)