English

Smooth entropy in axiomatic thermodynamics

Quantum Physics 2019-05-01 v1

Abstract

Thermodynamics can be formulated in either of two approaches, the phenomenological approach, which refers to the macroscopic properties of systems, and the statistical approach, which describes systems in terms of their microscopic constituents. We establish a connection between these two approaches by means of a new axiomatic framework that can take errors and imprecisions into account. This link extends to systems of arbitrary sizes including microscopic systems, for which the treatment of imprecisions is pertinent to any realistic situation. Based on this, we identify the quantities that characterise whether certain thermodynamic processes are possible with entropy measures from information theory. In the error-tolerant case, these entropies are so-called smooth min and max entropies. Our considerations further show that in an appropriate macroscopic limit there is a single entropy measure that characterises which state transformations are possible. In the case of many independent copies of a system (the so-called i.i.d. regime), the relevant quantity is the von Neumann entropy.

Keywords

Cite

@article{arxiv.1807.07583,
  title  = {Smooth entropy in axiomatic thermodynamics},
  author = {Mirjam Weilenmann and Lea Krämer Gabriel and Philippe Faist and Renato Renner},
  journal= {arXiv preprint arXiv:1807.07583},
  year   = {2019}
}

Comments

18 pages, 1 figure; book chapter in "Thermodynamics in the Quantum Regime - Recent Progress and Outlook", eds. F. Binder, L. A. Correa, C. Gogolin, J. Anders and G. Adesso; the chapter relies on results reported in MW's PhD thesis, arXiv:1807.06345

R2 v1 2026-06-23T03:07:52.545Z