Thermodynamic curvature: pure fluids to black holes
Abstract
Thermodynamics unavoidably contains fluctuation theory, expressible in terms of a unique thermodynamic information metric. This metric produces an invariant thermodynamic Riemannian curvature scalar which, in fluid and spin systems, measures interatomic interactions. Specifically, measures the size of organized fluctuating microscopic structures, and the sign of indicates whether the interactions are effectively attractive or repulsive. has also been calculated for black hole thermodynamics for which there is no consensus about any underlying microscopic structures. It is hoped that the physical interpretation of in fluid and spin systems might offer insight into black hole microstructures. I give a brief review of results for in black holes, including stability, the sign of , R=0, diverging |R|, and various claims of "inconsistencies" in thermodynamic metric geometry.
Keywords
Cite
@article{arxiv.1210.2011,
title = {Thermodynamic curvature: pure fluids to black holes},
author = {George Ruppeiner},
journal= {arXiv preprint arXiv:1210.2011},
year = {2015}
}
Comments
4 pages, 2 figures, 1 table