Theory of chaos regularization of tunneling in chaotic quantum dots

Ming-Jer Lee, Thomas M. Antonsen, Edward Ott, and Louis M. Pecora
Phys. Rev. E 86, 056212 – Published 21 November 2012

Abstract

Recent numerical experiments of Pecora et al. [Phys. Rev. E 83, 065201 (2011)] have investigated tunneling between two-dimensional symmetric double wells separated by a tunneling barrier. The wells were bounded by hard walls and by the potential barrier which was created by a step increase from the zero potential within a well to a uniform barrier potential within the barrier region, which is a situation potentially realizable in the context of quantum dots. Numerical results for the splitting of energy levels between symmetric and antisymmetric eigenstates were calculated. It was found that the splittings vary erratically from state to state, and the statistics of these variations were studied for different well shapes with the fluctuation levels being much less in chaotic wells than in comparable nonchaotic wells. Here we develop a quantitative theory for the statistics of the energy level splittings for chaotic wells. Our theory is based on the random plane wave hypothesis of Berry. While the fluctuation statistics are very different for chaotic and nonchaotic well dynamics, we show that the mean splittings of differently shaped wells, including integrable and chaotic wells, are the same if their well areas and barrier parameters are the same. We also consider the case of tunneling from a single well into a region with outgoing quantum waves.

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  • Received 19 June 2012

DOI:https://doi.org/10.1103/PhysRevE.86.056212

©2012 American Physical Society

Authors & Affiliations

Ming-Jer Lee1,*, Thomas M. Antonsen1, Edward Ott1, and Louis M. Pecora2

  • 1University of Maryland, College Park, Maryland 20742, USA
  • 2Materials Physics and Sensors, U.S. Naval Research Laboratory, Washington, D.C. 20375, USA

  • *leemj@umd.edu

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Issue

Vol. 86, Iss. 5 — November 2012

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