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Journal article · Preprint article

Electron transport in nanoporous graphene: Probing the Talbot effect

From

Department of Physics, Technical University of Denmark1

Center for Nanostructured Graphene, Centers, Technical University of Denmark2

University of Regensburg3

Donostia International Physics Center4

Electrons in graphene can show diffraction and interference phenomena fully analogous to light thanks to their Dirac-like energy dispersion. However it is not clear how this optical analogy persists in nanostructured graphene, e.g. with pores. Nanoporous graphene (NPG) consisting of linked graphene nanoribbons has recently been fabricated using molecular precursors and bottom-up assembly [Moreno et al, Science 360, 199 (2018)].

We predict that electrons propagating in NPG exhibit the interference Talbot effect, analogous to photons in coupled waveguides. Our results are obtained by parameter-free atomistic calculations of real-sized NPG samples, based on seamlessly integrated density functional theory and tight-binding regions.

We link the origins of this interference phenomenon to the band structure of the NPG. Most importantly, we demonstrate how the Talbot effect may be detected experimentally using dual-probe scanning tunneling microscopy. Talbot interference of electron waves in NPG or other related materials may open up new opportunities for future quantum electronics, computing or sensing.

Language: English
Publisher: American Chemical Society
Year: 2019
Pages: 576-581
ISSN: 15306992 and 15306984
Types: Journal article and Preprint article
DOI: 10.1021/acs.nanolett.8b04616
ORCIDs: Papior, Nick Rübner , Brandbyge, Mads , 0000-0003-3610-3231 , 0000-0002-6728-1025 and 0000-0001-5556-0898

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