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Temperature in Nonequilibrium Quantum Systems

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arxiv 2105.11915 v1 pith:M37Q3LV5 submitted 2021-05-25 quant-ph

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keywords systemtemperaturenonequilibriumstateenergyinternalquantumread
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We extend on ideas from standard thermodynamics to show that temperature can be assigned to a general nonequilibrium quantum system. By choosing a physically motivated complete set of observables and expanding the system state thereupon, one can read a set of relevant, independent thermodynamic variables which include internal energy. This expansion allows us to read a nonequilibrium temperature as the partial derivative of the von Neumann entropy with respect to internal energy. We show that this definition of temperature is one of a set of thermodynamics parameters unambiguously describing the system state. It has appealing features such as positivity for passive states and consistency with the standard temperature for thermal states. By attributing temperature to correlations in a bipartite system, we obtain a universal relation which connects the temperatures of subsystems, total system as a whole, and correlation. All these temperatures can be different even when the composite system is in a well-defined Gibbsian thermal state.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Temperature Beyond Equilibrium in Isolated Quantum Many-Body Systems and Their Subsystems

    quant-ph 2026-07 conditional novelty 8.0 of 10

    Out-of-equilibrium inverse temperature is defined as the coordinate of a canonical flow that preserves the state's energy-coherence leaf, and it generically differs from the entropy derivative.

  2. Ideal Gas Law for a Quantum Particle

    quant-ph 2025-05 conditional novelty 4.0 of 10

    For a single quantum particle in a billiard, P S = kBT holds exactly in a circle, on average in other shapes, and essentially by definition for the paper's weighted pressure P2.

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