Holographic entanglement entropy of the Coulomb branch

被引:0
作者
Adam Chalabi
S. Prem Kumar
Andy O’Bannon
Anton Pribytok
Ronnie Rodgers
Jacopo Sisti
机构
[1] University of Southampton,STAG Research Centre, Physics and Astronomy
[2] Swansea University,Department of Physics
[3] Trinity College,School of Mathematics & Hamilton Mathematics Institute
[4] Utrecht University,Institute for Theoretical Physics
来源
Journal of High Energy Physics | / 2021卷
关键词
AdS-CFT Correspondence; Conformal Field Theory; Gauge-gravity correspondence; Supersymmetric Gauge Theory;
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摘要
We compute entanglement entropy (EE) of a spherical region in (3 + 1)-dimensional 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 SU(N) Yang-Mills theory in states described holographically by probe D3-branes in AdS5 × S5. We do so by generalising methods for computing EE from a probe brane action without having to determine the probe’s backreaction. On the Coulomb branch with SU(N) broken to SU(N − 1) × U(1), we find the EE monotonically decreases as the sphere’s radius increases, consistent with the a-theorem. The EE of a symmetric-representation Wilson line screened in SU(N − 1) also monotonically decreases, although no known physical principle requires this. A spherical soliton separating SU(N) inside from SU(N − 1) × U(1) outside had been proposed to model an extremal black hole. However, we find the EE of a sphere at the soliton’s radius does not scale with the surface area. For both the screened Wilson line and soliton, the EE at large radius is described by a position-dependent W-boson mass as a short-distance cutoff. Our holographic results for EE and one-point functions of the Lagrangian and stress-energy tensor show that at large distance the soliton looks like a Wilson line in a direct product of fundamental representations.
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