Upper bounds of holographic entanglement entropy growth rate for thermofield double states
Ze Li, Run-Qiu Yang
Abstract
We studied the upper bounds of the holographic entanglement entropy growth rate for thermofield double (TFD) states. By comparing the cases of vacuum AdS and charged AdS black holes, we conjecture: for all static planar or spherically symmetric asymptotically Schwarzschild-AdS black holes of same mass density or entropy density, the vacuum AdS black hole gives the maximum entanglement entropy growth rate. We gave proofs by assuming dominant energy condition. We also considered the AdS black hole spacetime with real scalar fields case, where the scalar fields violate the dominant energy condition and the bulk geometry is not asymptotically Schwarzschild-AdS. Numerical results show that this case vacuum black hole still has maximal growth rate if we fixed entropy. However, in the case of fixed energy, vacuum case has maximal growth rate of entanglement entropy only under standard quantization scheme.
Create a lesson
Related papers
Quenched Cosmological Collider Physics: Random fields & white noises
Matheus Curado Ferreira
Infrared Screening of the Cosmological Constant
Vincenzo Branchina, Riccardo Gandolfo, Arcangelo Pernace
Six-point consistency and uniqueness of the Veneziano amplitude
Ilmo Sung
The cosmological necklace problem
Andreas Blommaert, Jonah Kudler-Flam, Vladimir Narovlansky et al.
All-Plus QED Wavefunctions in de Sitter Space
Song He, Jiajie Mei, Yuyu Mo
Reduction technique for expanding the Feynman diagrams in AdS2
V. S. Khiteev