Death and resurrection of the zeroth principle of thermodynamics
arXiv:1302.0724 · doi:10.1103/PhysRevD.87.084001
Abstract
The zeroth principle of thermodynamics in the form "temperature is uniform at equilibrium" is notoriously violated in relativistic gravity. Temperature uniformity is often derived from the maximization of the total number of microstates of two interacting systems under energy exchanges. Here we discuss a generalized version of this derivation, based on informational notions, which remains valid in the general context. The result is based on the observation that the time taken by any system to move to a distinguishable (nearly orthogonal) quantum state is a universal quantity that depends solely on the temperature. At equilibrium the net information flow between two systems must vanish, and this happens when two systems transit the same number of distinguishable states in the course of their interaction.
5 pages, 2 figures
References in corpus (1)
Cited by in corpus (13)
- Tolman temperature gradients in a gravitational field
- Statistical Equilibrium in Quantum Gravity: Gibbs states in Group Field Theory
- Towards weighing the condensation energy to ascertain the Archimedes force of vacuum
- Coupling and thermal equilibrium in general-covariant systems
- Thermodynamical path integral and emergent symmetry
- Unruh versus Tolman: On the heat of acceleration
- The zeroth law in quasi-homogeneous thermodynamics and black holes
- Covariant Momentum Map Thermodynamics for Parametrized Field Theories
- QED plasma in a background of static gravitational fields
- Statistical mechanics of covariant systems with multi-fingered time
- Why do we remember the past and not the future? The 'time oriented coarse graining' hypothesis
- On Non-Equilibrium Thermodynamics of Space-Time and Quantum Gravity
- Thermal Time and Kepler's Second Law