Time Evolution In Macroscopic Systems. I: Equations of Motion
arXiv:cond-mat/0303290 · doi:10.1023/B:FOOP.0000012007.06843.ed
Abstract
Time evolution of macroscopic systems is re-examined primarily through further analysis and extension of the equation of motion for the density matrix . Because contains both classical and quantum-mechanical probabilities it is necessary to account for changes in both in the presence of external influences, yet standard treatments tend to neglect the former. A model of time-dependent classical probabilities is presented to illustrate the required type of extension to the conventional time-evolution equation, and it is shown that such an extension is already contained in the definition of the density matrix.
15 pages
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Cited by in corpus (8)
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