English

Lower-Dimensional Black Hole Chemistry

General Relativity and Quantum Cosmology 2016-01-26 v2

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 (2+1)(2+1)-D and a (1+1)(1+1)-D limits of Einstein gravity. The Smarr relation is naturally upheld in both BTZ cases, where those with Q0Q \ne 0 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 D0D\rightarrow 0 limit of a generic D+2D+2-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 D>2D>2 cases must be adopted in order to satisfy the relation. The requirement of positive entropy implies a lower bound on the mass of a (1+1)(1+1)-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 D=3D=3 nor the D2D \rightarrow 2 black holes exhibit any interesting phase behaviour.

Keywords

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

R2 v1 2026-06-22T10:59:27.276Z