A Schmidt decomposition approach to quantum thermodynamics
arXiv:2205.06917 · doi:10.3390/e24111645
Abstract
The development of a self-consistent thermodynamic theory of quantum systems is of fundamental importance for modern physics. Still, despite its essential role in quantum science and technology, there is no unifying formalism for characterizing the thermodynamics within general autonomous quantum systems, and many fundamental open questions remain unanswered. Along these lines, most current efforts and approaches restrict the analysis to particular scenarios of approximative descriptions and semi-classical regimes. Here we propose a novel approach to describe the thermodynamics of arbitrary bipartite autonomous quantum systems based on the well-known Schmidt decomposition. This formalism provides a simple, exact and symmetrical framework for expressing the energetics between interacting systems, including scenarios beyond the standard description regimes, such as strong coupling. We show that this procedure allows a straightforward identification of local effective operators suitable for characterizing the physical local internal energies. We also demonstrate that these quantities naturally satisfy the usual thermodynamic notion of energy additivity.
7 pages; Typos corrected; Minor text changes and improvements; Phase gauge section updated, results unchanged
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- Charge-Preserving Operations in Quantum Batteries
- On the energetic analysis of autonomous quantum systems
- The concept of minimal dissipation and the identification of work in autonomous systems: A view from classical statistical physics