Valence band structure calculations of strained GeSn quantum well pFETs
arXiv:1703.01812
Abstract
The dependence of valence band structures of GeSn with 0 0.2 on Sn content, biaxial strain, and substrate orientation is calculated using the nonlocal empirical pseudopotential method. The first valence subband structure in p-type Ge cap/fully strained GeSn quantum well/Ge (001) and (111) inversion layers are theoretically studied using the 66 kp model. A wave-function coupling of a Ge cap with respect to a strained GeSn quantum well, which is influenced by the cap thickness, valence band offset, and confined effective mass, changes the energy dispersion relation in the two-dimensional -space. The increase in Sn content and the decrease in cap thickness increase the hole population in the strained GeSn quantum well to reduce the transport effective mass at the zone center in the Ge/strained GeSn/Ge inversion layers.
6 pages, 6 figures, 2 tables