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Journal article · Preprint article

Multi-scale approach to first-principles electron transport beyond 100 nm

In Nanoscale 2019, Volume 11, Issue 13, pp. 6153-6164
From

Department of Physics, Technical University of Denmark1

Department of Applied Mathematics and Computer Science, Technical University of Denmark2

Center for Nanostructured Graphene, Centers, Technical University of Denmark3

Technical University of Denmark4

Multi-scale computational approaches are important for studies of novel, low-dimensional electronic devices since they are able to capture the different length-scales involved in the device operation, and at the same time describe critical parts such as surfaces, defects, interfaces, gates, and applied bias, on a atomistic, quantum-chemical level.

Here we present a multi-scale method which enables calculations of electronic currents in two-dimensional devices larger than 100 nm2, where multiple perturbed regions described by density functional theory (DFT) are embedded into an extended unperturbed region described by a DFT-parametrized tight-binding model.

We explain the details of the method, provide examples, and point out the main challenges regarding its practical implementation. Finally we apply it to study current propagation in pristine, defected and nanoporous graphene devices, injected by chemically accurate contacts simulating scanning tunneling microscopy probes.

Language: English
Year: 2019
Pages: 6153-6164
ISSN: 20403372 and 20403364
Types: Journal article and Preprint article
DOI: 10.1039/c9nr00866g
ORCIDs: Papior, Nick Rübner , Brandbyge, Mads , 0000-0003-3610-3231 and 0000-0002-2415-9388

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