Anomalously large capacitance of a plane capacitor with a two-dimensional electron gas
Abstract
In electronic devices where a two-dimensional electron gas (2DEG) comprises one or both sides of a plane capacitor, the resulting capacitance can be larger than the "geometric capacitance" determined by the physical separation between electrodes. This larger capacitance is known to result from the Coulomb correlations between individual electrons within the low density 2DEG, which lead to a negative thermodynamic density of states (negative compressibility). Experiments on such systems generally operate in the regime where the average spacing between electrons in the 2DEG is smaller than , and these experiments observe by only a few percent. A recent experiment [1], however, has observed larger than by almost 40% while operating in the regime . In this paper we argue that at correlations between the electronic charge of opposite electrodes become important. We develop a theory of the capacitance for the full range of . We show that, in the absence of disorder, the capacitance can be times larger than the geometric value, where is the electron Bohr radius. Our results compare favorably with the experiment of Ref. [1] without the use of adjustable parameters.
Cite
@article{arxiv.1007.5308,
title = {Anomalously large capacitance of a plane capacitor with a two-dimensional electron gas},
author = {Brian Skinner and B. I. Shklovskii},
journal= {arXiv preprint arXiv:1007.5308},
year = {2012}
}
Comments
8 pages, 6 figures; revised discussion of the zero density limit; some typos fixed