Lower-Dimensional Black Hole Chemistry
Abstract
The connection between black hole thermodynamics and chemistry is extended to the lower-dimensional regime by considering the rotating and charged BTZ metric in the -D and a -D limits of Einstein gravity. The Smarr relation is naturally upheld in both BTZ cases, where those with violate the Reverse Isoperimetric Inequality and are thus superentropic. The inequality can be maintained, however, with the addition of a new thermodynamic work term associated with the mass renormalization scale. The limit of a generic -dimensional Einstein gravity theory is also considered to derive the Smarr and Komar relations, although the opposite sign definitions of the cosmological constant and thermodynamic pressure from the cases must be adopted in order to satisfy the relation. The requirement of positive entropy implies a lower bound on the mass of a -D black hole. Promoting an associated constant of integration to a thermodynamic variable allows one to define a "rotation" in one spatial dimension. Neither the nor the black holes exhibit any interesting phase behaviour.
Cite
@article{arxiv.1509.05481,
title = {Lower-Dimensional Black Hole Chemistry},
author = {Antonia M. Frassino and Robert B. Mann and Jonas R. Mureika},
journal= {arXiv preprint arXiv:1509.05481},
year = {2016}
}
Comments
8 pages, Latex, Typos corrected, Final version that appears in the journal