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Phys. Rev. B 85, 035109 (2012) [9 pages]

Hybridization of wave functions in one-dimensional localization

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D. A. Ivanov1, M. A. Skvortsov2,3, P. M. Ostrovsky4,2, and Ya. V. Fominov2,3
1Institute of Theoretical Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland
2L. D. Landau Institute for Theoretical Physics, 142432 Chernogolovka, Russia
3Moscow Institute of Physics and Technology, 141700 Moscow, Russia
4Institut für Nanotechnologie, Forschungszentrum Karlsruhe, 76021 Karlsruhe, Germany

Received 7 November 2011; published 12 January 2012

A quantum particle can be localized in a disordered potential, the effect known as Anderson localization. In such a system, correlations of wave functions at very close energies may be described, due to Mott, in terms of a hybridization of localized states. We revisit this hybridization description and show that it may be used to obtain quantitatively exact expressions for some asymptotic features of correlation functions, if the tails of the wave functions and the hybridization matrix elements are assumed to have log-normal distributions typical for localization effects. Specifically, we consider three types of one-dimensional systems: a strictly one-dimensional wire and two quasi-one-dimensional wires with unitary and orthogonal symmetries. In each of these models, we consider two types of correlation functions: the correlations of the density of states at close energies and the dynamic response function at low frequencies. For each of those correlation functions, within our method, we calculate three asymptotic features: the behavior at the logarithmically large “Mott length scale,” the low-frequency limit at length scale between the localization length and the Mott length scale, and the leading correction in frequency to this limit. In the several cases, where exact results are available, our method reproduces them within the precision of the orders in frequency considered.

©2012 American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevB.85.035109
DOI:
10.1103/PhysRevB.85.035109
PACS:
73.20.Fz, 73.21.Hb, 73.22.Dj