English

Identifying quantum subsystems using Clausius' second law of thermodynamics

Quantum Physics 2018-03-15 v2

Abstract

There are many ways to decompose the Hilbert space H of a composite quantum system into tensor product subspaces. Different subsystem decompositions generally imply different interaction Hamiltonians V, and therefore different expectation values for subsystem observables. This means that thE uniqueness of physical predictions is not guaranteed, despite the uniqueness of the total Hamiltonian H and the total Hilbert space. Here we use Clausius' version of the second law of thermodynamics (CSL) and standard identifications of thermodynamic quantities to identify possible subsystem decompositions. It is shown that agreement with the CSL is obtained, whenever the total Hamiltonian and the subsystem-dependent interaction Hamiltonian commute (i.e. [H,V]=0). Not imposing this constraint can result in the transfer of heat from a cooler to a hotter subsystem, in conflict with thermodynamics. We also investigate the status of the CSL with respect to non- standard definitions of thermodynamic quantities and quantum subsystems.

Keywords

Cite

@article{arxiv.1602.04037,
  title  = {Identifying quantum subsystems using Clausius' second law of thermodynamics},
  author = {Adam Stokes and Prasenjit Deb and Almut Beige},
  journal= {arXiv preprint arXiv:1602.04037},
  year   = {2018}
}

Comments

13 pages, 5 figures

R2 v1 2026-06-22T12:48:58.855Z