Information-theoretic equilibration: the appearance of irreversibility under complex quantum dynamics
arXiv:1208.3419 · doi:10.1103/PhysRevLett.111.080403
Abstract
The question of how irreversibility can emerge as a generic phenomena when the underlying mechanical theory is reversible has been a long-standing fundamental problem for both classical and quantum mechanics. We describe a mechanism for the appearance of irreversibility that applies to coherent, isolated systems in a pure quantum state. This equilibration mechanism requires only an assumption of sufficiently complex internal dynamics and natural information-theoretic constraints arising from the infeasibility of collecting an astronomical amount of measurement data. Remarkably, we are able to prove that irreversibility can be understood as typical without assuming decoherence or restricting to coarse-grained observables, and hence occurs under distinct conditions and time-scales than those implied by the usual decoherence point of view. We illustrate the effect numerically in several model systems and prove that the effect is typical under the standard random-matrix conjecture for complex quantum systems.
15 pages, 7 figures. Discussion has been clarified and additional numerical evidence for information theoretic equilibration is provided for a variant of the Heisenberg model as well as one and two-dimensional random local Hamiltonians
References in corpus (8)
- Thermalization and its mechanism for generic isolated quantum systems
- Quantum equilibration in finite time
- Long-Time Behavior of Macroscopic Quantum Systems: Commentary Accompanying the English Translation of John von Neumann's 1929 Article on the Quantum Ergodic Theorem
- Equilibration of isolated macroscopic quantum systems
- Non-Markovian behavior of small and large complex quantum systems
- Convergence to equilibrium under a random Hamiltonian
- Multi-spin dynamics of the solid-state NMR Free Induction Decay
- The complexity of energy eigenstates as a mechanism for equilibration
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