A numerical method to efficiently calculate the transport properties of large systems: an algorithm optimized for sparse linear solvers
Mesoscale and Nanoscale Physics
2019-08-28 v1 Computational Physics
Abstract
We present a self-contained description of the wave-function matching (WFM) method to calculate electronic quantum transport properties of nanostructures using the Landauer-B\"uttiker approach. The method is based on a partition of the system between a central region ("conductor") containing sites and an asymptotic region ("leads") characterized by open channels. The two subsystems are linearly coupled and solved simultaneously using an efficient sparse linear solver. Invoking the sparsity of the Hamiltonian matrix representation of the central region, we show that the number of operations required by the WFM method in conductance calculations scales with for large .
Cite
@article{arxiv.1812.07709,
title = {A numerical method to efficiently calculate the transport properties of large systems: an algorithm optimized for sparse linear solvers},
author = {Tatiane P. Santos and Leandro R. F. Lima and Caio H. Lewenkopf},
journal= {arXiv preprint arXiv:1812.07709},
year = {2019}
}
Comments
22 pages, 8 figures