English

Double brane holographic model dual to 2d ICFTs

High Energy Physics - Theory 2023-03-03 v2

Abstract

A minimal single-brane holographic model can be used as a dual to 2d conformal interfaces (ICFTs) to calculate the transmission coefficient T\mathcal{T} of energy transported across the defect as well as boundary entropy logg\log g, the additional entanglement entropy for some sub-region that encloses the defect. Both T\mathcal{T} and logg\log g are uniquely determined by the tension characterizing the brane. In contrast, in field theory defects typically the transmission coefficient can be dialed from 0 to 1 independently for each allowed value of logg\log g. To address this discrepancy, we look at a double brane (3-region bulk) holographic model. Merger of two single brane interfaces creates genuinely new interfaces which indeed allow a range of accessible transmission coefficients for a fixed value of logg\log g. In particular, the T=0\mathcal{T}=0 limit of two completely decoupled BCFTs can be achieved.

Keywords

Cite

@article{arxiv.2206.01752,
  title  = {Double brane holographic model dual to 2d ICFTs},
  author = {Saba Asif Baig and Andreas Karch},
  journal= {arXiv preprint arXiv:2206.01752},
  year   = {2023}
}

Comments

23 pages, 6 images; v2: added minor clarifications regarding the allowed tension ranges, and comments on saturating the AANEC bound in those ranges