English

Power Law Blinking Quantum Dots: Stochastic and Physical Models

Statistical Mechanics 2007-05-23 v2

Abstract

We quantify nonergodic and aging behaviors of nanocrystals (or quantum dots) based on stochastic model. Ergodicity breaking is characterized based on time average intensity and time average correlation function, which remain random even in the limit of long measurement time. We argue that certain aspects of nonergodicity can be explained based on a modification of Onsager's diffusion model of an ion pair escaping neutralization. We explain how diffusion models generate nonergodic behavior, namely a simple mechanism is responsible for the breakdown of the standard assumption of statistical mechanics. Data analysis shows that distributions of on and off intervals in the nanocrystal blinking are almost identical, ψ±(τ)A±τ(1+α±)\psi_{\pm}(\tau)\propto A_{\pm}\tau^{-(1+\alpha_{\pm})} with A+AA_{+}\approx A_{-} and α+α=α\alpha_{+}\approx\alpha_{-}=\alpha and α0.8\alpha\approx0.8. The latter exponent indicates that a simple diffusion model with α=0.5\alpha=0.5 neglecting the electron-hole Coulomb interaction and/or tunneling, is not sufficient.

Keywords

Cite

@article{arxiv.cond-mat/0506512,
  title  = {Power Law Blinking Quantum Dots: Stochastic and Physical Models},
  author = {Gennady Margolin and Vladimir Protasenko and Masaru Kuno and Eli Barkai},
  journal= {arXiv preprint arXiv:cond-mat/0506512},
  year   = {2007}
}

Comments

Special volume of ACP entitled "Fractals, diffusion and relaxation in disordered complex systems"; 14 pages

R2 v1 2026-07-22T11:18:49.753Z