Theory of superfast fronts of impact ionization in semiconductor structures
Abstract
We present an analytical theory for impact ionization fronts in reversely biased p^{+}-n-n^{+} structures. The front propagates into a depleted n base with a velocity that exceeds the saturated drift velocity. The front passage generates a dense electron-hole plasma and in this way switches the structure from low to high conductivity. For a planar front we determine the concentration of the generated plasma, the maximum electric field, the front width and the voltage over the n base as functions of front velocity and doping of the n base. Theory takes into account that drift velocities and impact ionization coefficients differ between electrons and holes, and it makes quantitative predictions for any semiconductor material possible.
Keywords
Cite
@article{arxiv.0705.2028,
title = {Theory of superfast fronts of impact ionization in semiconductor structures},
author = {Pavel Rodin and Ute Ebert and Andrey Minarsky and Igor Grekhov},
journal= {arXiv preprint arXiv:0705.2028},
year = {2009}
}
Comments
18 pagers, 10 figures