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- W2606703701 abstract "We develop a perturbation theory of quantum (and classical) master equations with slowly varying parameters, applicable to systems which are externally controlled on a time scale much longer than their characteristic relaxation time. We apply this technique to the analysis of finite-time isothermal processes in which, differently from quasi-static transformations, the state of the system is not able to continuously relax to the equilibrium ensemble. Our approach allows to formally evaluate perturbations up to arbitrary order to the work and heat exchange associated to an arbitrary process. Within first order in the perturbation expansion, we identify a general formula for the efficiency at maximum power of a finite-time Carnot engine. We also clarify under which assumptions and in which limit one can recover previous phenomenological results as, for example, the Curzon-Ahlborn efficiency." @default.
- W2606703701 created "2017-04-28" @default.
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- W2606703701 date "2017-08-02" @default.
- W2606703701 modified "2023-09-29" @default.
- W2606703701 title "Slow Dynamics and Thermodynamics of Open Quantum Systems" @default.
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- W2606703701 doi "https://doi.org/10.1103/physrevlett.119.050601" @default.
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