The entropy concept for non-equilibrium states
arXiv:1305.3912 · doi:10.1098/rspa.2013.0408
Abstract
In earlier work we presented a foundation for the Second Law of Classical Thermodynamics in terms of the Entropy Principle. More precisely, we provided an empirically accessible axiomatic derivation of an entropy function defined on all equilibrium states of all systems that has the appropriate additivity and scaling properties and whose increase is a necessary and sufficient condition for an adiabatic process between two states to be possible. Here, after a brief review of this approach, we address the question of defining entropy for non-equilibrium states. Our conclusion is that it is generally not possible to find a unique entropy that has all relevant physical properties. We do show, however, that one can define two entropy functions, called and , which, taken together, characterize the range of adiabatic processes that can occur between non-equilibrium states. The concept of {\it comparability} of states with respect to adiabatic changes plays an important role in our reasoning.
Published version
References in corpus (1)
Cited by in corpus (29)
- An introductory review of the resource theory approach to thermodynamics
- Stochastic independence as a resource in small-scale thermodynamics
- Thermodynamic work from operational principles
- Axiomatic relation between thermodynamic and information-theoretic entropies
- Fundamental work cost of quantum processes
- The fourth law of thermodynamics: steepest entropy ascent
- Essential equivalence of the GENERIC and Steepest Entropy Ascent models of dissipation for non-equilibrium thermodynamics
- Thermodynamic Signatures of Genuinely Multipartite Entanglement
- The first law of general quantum resource theories
- The Generalized Boltzmann Distribution is the Only Distribution in Which the Gibbs-Shannon Entropy Equals the Thermodynamic Entropy
- Thermodynamics from relative entropy
- Thermodynamics of quantum switch information capacity activation
- Exact equalities and thermodynamic relations for nonequilibrium steady states
- Theory of Entropy Production in Quantum Many-Body Systems
- Independence of work and entropy for equal energetic finite quantum systems: Passive state energy as an entanglement quantifier
- Analyzing the performance of distributed conflict resolution among autonomous vehicles
- Monotones in General Resource Theories
- Intrinsic and extrinsic thermodynamics for stochastic population processes with multi-level large-deviation structure
- Macroscopic Thermodynamic Reversibility in Quantum Many-Body Systems
- Smooth Metric Adjusted Skew Information Rates
- Asymptotic Reversibility of Thermal Operations for Interacting Quantum Spin Systems via Generalized Quantum Stein's Lemma
- Beyond i.i.d. in the Resource Theory of Asymmetry: An Information-Spectrum Approach for Quantum Fisher Information
- Evolution of capacity of entanglement and modular entropy in harmonic chains and scalar fields
- Smooth entropy in axiomatic thermodynamics
- Treating random sequential addition via the replica method
- Anomalous Enhancement of Entanglement Entropy in Nonequilibrium Steady States Driven by Zero-Temperature Reservoirs
- Majorization requires infinitely many second laws
- Deep learning of thermodynamic laws from microscopic dynamics
- Becoming Large, Becoming Infinite: The Anatomy of Thermal Physics and Phase Transitions in Finite Systems