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Quantum Simulation
Time-dependent occupation numbers in reduced-density-matrix functional theory: Application to an interacting Landau-Zener model
arXiv
Authors: Ryan Requist, Oleg Pankratov
Year
2010
Paper ID
10563
Status
Preprint
Abstract Read
~2 min
Abstract Words
121
Citations
N/A
Abstract
We prove that if the two-body terms in the equation of motion for the one-body reduced density matrix are approximated by ground-state functionals, the eigenvalues of the one-body reduced density matrix (occupation numbers) remain constant in time. This deficiency is related to the inability of such an approximation to account for relative phases in the two-body reduced density matrix. We derive an exact differential equation giving the functional dependence of these phases in an interacting Landau-Zener model and study their behavior in short- and long-time regimes. The phases undergo resonances whenever the occupation numbers approach the boundaries of the interval [0,1]. In the long-time regime, the occupation numbers display correlation-induced oscillations and the memory dependence of the functionals assumes a simple form.
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- We prove that if the two-body terms in the equation of motion for the one-body reduced density matrix are approximated by ground-state functionals, the eigenvalues of the...
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