arXiv Analytics

Sign in

arXiv:1602.07353 [hep-th]AbstractReferencesReviewsResources

Aspects of Holographic Entanglement at Finite Temperature and Chemical Potential

Sandipan Kundu, Juan F. Pedraza

Published 2016-02-23Version 1

We investigate the behavior of entanglement entropy at finite temperature and chemical potential for strongly coupled large-N gauge theories in $d$-dimensions ($d\ge 3$) that are dual to Anti-de Sitter-Reissner-Nordstrom geometries in $(d+1)-$dimensions, in the context of gauge-gravity duality. We develop systematic expansions based on the Ryu-Takayanagi prescription that enable us to derive analytic expressions for entanglement entropy and mutual information in different regimes of interest. Consequently, we identify the specific regions of the bulk geometry that contribute most significantly to the entanglement entropy of the boundary theory at different limits. We define a scale, dubbed as the effective temperature, which determines the behavior of entanglement in different regimes. At high effective temperature, entanglement entropy is dominated by the thermodynamic entropy, however, mutual information subtracts out this contribution and measures the actual quantum entanglement. Finally, we study the entanglement/disentanglement transition of mutual information in the presence of chemical potential which shows that the quantum entanglement between two sub-regions decreases with the increase of chemical potential.

Related articles: Most relevant | Search more
arXiv:0805.2321 [hep-th] (Published 2008-05-15)
Exact Effective action for (1+1)-dimensional fermions in an Abelian background at finite temperature and chemical potential
arXiv:1409.3031 [hep-th] (Published 2014-09-10)
Supersymmetry and R-symmetry Breaking in Meta-stable Vacua at Finite Temperature and Density
arXiv:1009.0752 [hep-th] (Published 2010-09-03, updated 2010-12-14)
Phase Transitions of Charged Scalars at Finite Temperature and Chemical Potential