Effects of Interedge Scattering on the Wigner Crystallization in Graphene Nanoribbons

Loading...

Date

Authors

Güçlü, Alev Devrim

Journal Title

Journal ISSN

Volume Title

Open Access Color

Green Open Access

Yes

OpenAIRE Downloads

2

OpenAIRE Views

2

Publicly Funded

No
Impulse
Top 10%
Influence
Average
Popularity
Average

relationships.isProjectOf

relationships.isJournalIssueOf

Abstract

We investigate the effects of coupling between the two zigzag edges of graphene nanoribbons on the Wigner crystallization of electrons and holes using a combination of tight-binding, mean-field Hubbard and many-body configuration interaction methods. We show that the thickness of the nanoribbon plays a crucial role in the formation of Wigner crystal. For ribbon widths smaller than 16 Å, increased kinetic energy overcomes the long-range Coulomb repulsion and suppresses the Wigner crystallization. For wider ribbons up to 38 Å wide, strong Wigner localization is observed for an even number of electrons, revealing an even-odd effect also found in the Coulomb-blockade addition spectrum. Interedge correlations are found to be strong enough to allow simultaneous crystallization on both edges, although an applied electric field can decouple the two edges. Finally, we show that Wigner crystallization can also occur for holes, albeit weaker than for electrons.

Description

Keywords

Wigner crystallization, Graphene, Nanoribbons, Electrons, Wigner crystallization, Condensed Matter - Strongly Correlated Electrons, Quantum Physics, Condensed Matter - Mesoscale and Nanoscale Physics, Nanoribbons, Electrons, Graphene

Fields of Science

0103 physical sciences, 01 natural sciences

Citation

Modarresi, M., and Güçlü, A. D. (2017). Effects of interedge scattering on the Wigner crystallization in graphene nanoribbons. Physical Review B, 95(23). doi:10.1103/PhysRevB.95.235103

WoS Q

Scopus Q

OpenCitations Logo
OpenCitations Citation Count
7

Volume

95

Issue

23

Start Page

End Page

PlumX Metrics
Citations

CrossRef : 7

Scopus : 7

Captures

Mendeley Readers : 10

Google Scholar Logo
Google Scholar™
OpenAlex Logo
OpenAlex FWCI
0.57904141

Sustainable Development Goals