arXiv · 1707.02141
First-principles Green's-function method for surface calculations: a pseudopotential localized basis set approach
Abstract
We present an efficient implementation of a surface Green's-function method for atomistic modeling of surfaces within the framework of density functional theory using a pseudopotential localized basis set approach. In this method, the system is described as a truly semi-infinite solid with a surface region coupled to an electron reservoir, thereby overcoming several fundamental drawbacks of the traditional slab approach. The versatility of the method is demonstrated with several applications to surface physics and chemistry problems that are inherently difficult to address properly with the slab method, including metal work function calculations, band alignment in thin-film semiconductor heterostructures, surface states in metals and topological insulators, and surfaces in external electrical fields. Results obtained with the surface Green's-function method are compared to experimental measurements and slab calculations to demonstrate the accuracy of the approach.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Søren Smidstrup, Daniele Stradi, Jess Wellendorff, Petr A. Khomyakov, Ulrik G. Vej-Hansen, Maeng-Eun Lee, Tushar Ghosh, Elvar Jónsson, Hannes Jónsson, Kurt Stokbro. 2017-11-01. First-principles Green's-function method for surface calculations: a pseudopotential localized basis set approach. https://doi.org/10.1103/physrevb.96.195309
Cite the original work for its findings. Save a collection to share your selection of sources.