The Anti-de Sitter-Reissner-Nordstrom (AdS-RN) black hole in the canonical
ensemble undergoes a phase transition similar to the liquid-gas phase
transition, i.e. the isocharges on the entropy-temperature plane develop an
unstable branch when the charge is smaller than a critical value. It was later
discovered that the isocharges on the entanglement entropy-temperature plane
also exhibit the same van der Waals-like structure, for spherical entangling
regions. In this paper, we present numerical results which sharpen this
similarity between entanglement entropy and black hole entropy, by showing that
both of these entropies obey Maxwell's equal area law to an accuracy of around
1 %. Moreover, we checked this for a wide range of size of the spherical
entangling region, and the equal area law holds independently of the size. We
also checked the equal area law for AdS-RN in 4 and 5 dimensions, so the
conclusion is not specific to a particular dimension. Finally, we repeated the
same procedure for a similar, van der Waals-like transition of the dyonic black
hole in AdS in a mixed ensemble (fixed electric potential and fixed magnetic
charge), and showed that the equal area law is not valid in this case. Thus the
equal area law for entanglement entropy seems to be specific to the AdS-RN
background.Comment: 17 pages, multiple figures. v4: matches published versio