Modeling surface roughness scattering in metallic nanowires
Abstract
Ando's model provides a rigorous quantum-mechanical framework for electron-surface roughness scattering, based on the detailed roughness structure. We apply this method to metallic nanowires and improve the model introducing surface roughness distribution functions on a finite domain with analytical expressions for the average surface roughness matrix elements. This approach is valid for any roughness size and extends beyond the commonly used Prange-Nee approximation. The resistivity scaling is obtained from the self-consistent relaxation time solution of the Boltzmann transport equation and is compared to Prange-Nee's approach and other known methods. The results show that a substantial drop in resistivity can be obtained for certain diameters by achieving a large momentum gap between Fermi level states with positive and negative momentum in the transport direction.
Cite
@article{arxiv.1506.02909,
title = {Modeling surface roughness scattering in metallic nanowires},
author = {Kristof Moors and Bart Sorée and Wim Magnus},
journal= {arXiv preprint arXiv:1506.02909},
year = {2016}
}
Comments
25 pages, 11 figures