AC Conductance in Dense Array of the Ge$_{0.7}$Si$_{0.3}$ Quantum Dots in Si
Abstract
Complex AC-conductance, , in the systems with dense GeSi quantum dot (QD) arrays in Si has been determined from simultaneous measurements of attenuation, , and velocity, , of surface acoustic waves (SAW) with frequencies = 30-300 MHz as functions of transverse magnetic field 18 T in the temperature range = 1-20 K. It has been shown that in the sample with dopant (B) concentration 8.2 cm at temperatures 4 K the AC conductivity is dominated by hopping between states localized in different QDs. The observed power-law temperature dependence, , and weak frequency dependence, , of the AC conductivity are consistent with predictions of the two-site model for AC hopping conductivity for the case of 1, where is the SAW angular frequency and is the typical population relaxation time. At 7 K the AC conductivity is due to thermal activation of the carriers (holes) to the mobility edge. In intermediate temperature region 4 7 K, where AC conductivity is due to a combination of hops between QDs and diffusion on the mobility edge, one succeeded to separate both contributions. Temperature dependence of hopping contribution to the conductivity above 4.5 K saturates, evidencing crossover to the regime where 1. From crossover condition, = 1, the typical value, , of the relaxation time has been determined.
Keywords
Cite
@article{arxiv.cond-mat/0506800,
title = {AC Conductance in Dense Array of the Ge$_{0.7}$Si$_{0.3}$ Quantum Dots in Si},
author = {I. L. Drichko and A. M. Diakonov and I. Yu. Smirnov and A. V. Suslov and Y. M. Galperin and A. I. Yakimov and A. I. Nikiforov},
journal= {arXiv preprint arXiv:cond-mat/0506800},
year = {2009}
}
Comments
revtex, 3 pages, 6 figures