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Thermodynamics is a theory of equilibrium transformations, but quantum dynamics are inherently out-of-equilibrium. It remains an open problem to show how the two theories are consistent with each other. Here we extend the ideas of pure state quantum statistical mechanics to show the equilibration of isolated quantum processes; that most multitime observables cannot distinguish a nonequilibrium process from an equilibrium one, unless the system is probed for an extremely large number of times. A surprising corollary of our results is that the size of non-Markovianity and other characteristics of the nonequilibrium process are bounded by that of the equilibrium process.
A new discrete model for energy relaxation of a quantum particle is described via a projection operator, causing the wave function collapse. Power laws for the evolution of the particle coordinate and momentum dispersions are derived. A new dissipati
We study holographically the out of equilibrium dynamics of a finite size closed quantum system in 2+1 dimensions, modelled by the collapse of a shell of a massless scalar field in AdS4. In global coordinates there exists a variety of evolutions towa
In thermodynamics, entropy production and work quantify irreversibility and the consumption of useful energy, respectively, when a system is driven out of equilibrium. For quantum systems, these quantities can be identified at the stochastic level by
We investigate the time evolution of an open quantum system described by a Lindblad master equation with dissipation acting only on a part of the degrees of freedom ${cal H}_0$ of the system, and targeting a unique dark state in ${cal H}_0$. We show
Irreversibility is a fundamental concept with important implications at many levels. It pinpoints the fundamental difference between the intrinsically reversible microscopic equations of motion and the unidirectional arrow of time that emerges at the