English

Holographic entanglement chemistry

High Energy Physics - Theory 2017-06-14 v2

Abstract

We use the Iyer-Wald formalism to derive an extended first law of entanglement that includes variations in the cosmological constant, Newton's constant and --in the case of higher-derivative theories-- all the additional couplings of the theory. In Einstein gravity, where the number of degrees of freedom N2N^2 of the dual field theory is a function of Λ\Lambda and GG, our approach allows us to vary NN keeping the field theory scale fixed or to vary the field theory scale keeping NN fixed. We also derive an extended first law of entanglement for Gauss-Bonnet and Lovelock gravity and show that in these cases all the extra variations reorganize nicely in terms of the central charges of the theory. Finally, we comment on the implications for renormalization group flows and c-theorems in higher dimensions.

Keywords

Cite

@article{arxiv.1605.00595,
  title  = {Holographic entanglement chemistry},
  author = {Elena Caceres and Phuc H. Nguyen and Juan F. Pedraza},
  journal= {arXiv preprint arXiv:1605.00595},
  year   = {2017}
}

Comments

38 pages, typos corrected, version published in Phys. Rev. D