Atomic Collapse in Graphene Quantum Dots in a Magnetic Field
Loading...
Date
2022
Authors
Eren, İsmail
Güçlü, Alev Devrim
Journal Title
Journal ISSN
Volume Title
Publisher
Elsevier
Open Access Color
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
We investigate finite size and external magnetic field effects on the atomic collapse due to a Coulomb impurity placed at the center of a hexagonal graphene quantum dot within tight binding and mean-field Hubbard approaches. For large quantum dots, the atomic collapse effect persists when the magnetic field is present, characterized by a series of Landau level crossings and anticrossings, in agreement with previous bulk graphene results. However, we show that a new regime arises if the size of the quantum dot is comparable to or smaller than the magnetic length: While the lowest bound states cross the Fermi level at a lower value of coupling constant β<0.5, a size independent critical coupling constant βc∗>0.5 emerges in the local density of states spectrum, which increases with the applied magnetic field. These effects are found to be persistent in the presence of electron–electron interactions within mean-field Hubbard approximation.
Description
Keywords
Atomic collapse, Electronic structure, Magnetic field
Fields of Science
0301 basic medicine, 0303 health sciences, 03 medical and health sciences
Citation
WoS Q
Q3
Scopus Q
Q2

OpenCitations Citation Count
1
Source
Solid State Communications
Volume
351
Issue
Start Page
End Page
PlumX Metrics
Citations
CrossRef : 4
Scopus : 4
Google Scholar™


