English

Failure of local thermal equilibrium in quantum friction

Quantum Physics 2016-09-05 v1

Abstract

Recent progress in manipulating atomic and condensed matter systems has instigated a surge of interest in non-equilibrium physics, including many-body dynamics of trapped ultracold atoms and ions, near-field radiative heat transfer, and quantum friction. Under most circumstances the complexity of such non-equilibrium systems requires a number of approximations to make theoretical descriptions tractable. In particular, it is often assumed that spatially separated components of a system thermalize with their immediate surroundings, although the global state of the system is out of equilibrium. This powerful assumption reduces the complexity of non-equilibrium systems to the local application of well-founded equilibrium concepts. While this technique appears to be consistent for the description of some phenomena, we show that it fails for quantum friction by underestimating by approximately 80%80 \% the magnitude of the drag force. Our results show that the correlations among components of driven, but steady-state, quantum systems invalidate the assumption of local thermal equilibrium, calling for a critical reexamination of this approach for describing the physics of non-equilibrium systems.

Keywords

Cite

@article{arxiv.1604.06405,
  title  = {Failure of local thermal equilibrium in quantum friction},
  author = {F. Intravaia and R. O. Behunin and C. Henkel and K. Busch and D. A. R. Dalvit},
  journal= {arXiv preprint arXiv:1604.06405},
  year   = {2016}
}

Comments

5+2 pages, 2 figures. arXiv admin note: portions of this article previously appeared as arXiv:1603.05165v1, which has been updated