English

Dynamic effects in double graphene-layer structures with inter-layer resonant-tunneling negative conductivity

Mesoscale and Nanoscale Physics 2015-06-16 v1

Abstract

We study the dynamic effects in the double graphene-layer (GL) structures with the resonant-tunneling (RT) and the negative differential inter-GL conductivity. Using the developed model, which accounts for the excitation of self-consistent oscillations of the electron and hole densities and the ac electric field between GLs (plasma oscillations), we calculate the admittance of the double-GL RT structures as a function of the signal frequency and applied voltages, and the spectrum and increment/decrement of plasma oscillations. Our results show that the electron-hole plasma in the double-GL RT structures with realistic parameters is stable with respect to the self-excitation of plasma oscillations and aperiodic perturbations. The stability of the electron-hole plasma at the bias voltages corresponding to the inter-GL RT and strong nonlinearity of the RT current-voltage characteristics enable using the double-GL RT structures for detection of teraherz (THz) radiation. The excitation of plasma oscillations by the incoming THz radiation can result in a sharp resonant dependence of detector responsivity on radiation frequency and the bias voltage. Due to a strong nonlinearity of the current-voltage characteristics of the double-GL structures at RT and the resonant excitation of plasma oscillations, the maximum responsivity, RVmaxR_V^{max}, can markedly exceed the values (104105)(10^4 - 10^5)~V/W at room temperature.

Keywords

Cite

@article{arxiv.1305.3966,
  title  = {Dynamic effects in double graphene-layer structures with inter-layer resonant-tunneling negative conductivity},
  author = {V. Ryzhii and A. Satou and T. Otsuji and M. Ryzhii and V. Mitin and M S Shur},
  journal= {arXiv preprint arXiv:1305.3966},
  year   = {2015}
}

Comments

7 pages, 4 figures

R2 v1 2026-06-22T00:17:58.063Z