Scientific Library of Tomsk State University

   E-catalog        

Normal view MARC view

Graphene Quantum Dots electronic resource by Alev Devrim Güçlü, Pawel Potasz, Marek Korkusinski, Pawel Hawrylak.

By: Güçlü, Alev Devrim [author.]Contributor(s): Potasz, Pawel [author.] | Korkusinski, Marek [author.] | Hawrylak, Pawel [author.] | SpringerLink (Online service)Material type: TextTextSeries: NanoScience and TechnologyPublication details: Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer, 2014Description: IX, 172 p. 104 illus., 37 illus. in color. online resourceContent type: text Media type: computer Carrier type: online resourceISBN: 9783662446119Subject(s): physics | engineering | Optical materials | Nanotechnology | Physics | Nanoscale Science and Technology | Optical and Electronic Materials | Nanotechnology and Microengineering | Nanotechnology | Applied and Technical PhysicsDDC classification: 620.5 LOC classification: QC176.8.N35T174.7Online resources: Click here to access online
Contents:
Single particle properties of graphene quantum dots -- Electron-electron interaction in gated graphene nanostructures -- Magnetic properties of gated graphene nanostructures -- Optical properties of graphene nanostructures.
In: Springer eBooksSummary: This book reflects the current status of theoretical and experimental research of graphene based nanostructures, in particular quantum dots, at a level accessible to young researchers, graduate students, experimentalists and theorists. It presents the current state of research of graphene quantum dots, a single or few monolayer thick islands of graphene.  It introduces the reader to the electronic and optical properties of graphite, intercalated graphite and graphene, including Dirac fermions, Berry's phase associated with sublattices and valley degeneracy, covers single particle properties of graphene quantum dots, electron-electron interaction, magnetic properties and optical properties of gated graphene nanostructures. The electronic, optical and magnetic  properties of the graphene quantum dots as a function of size, shape, type of edge and carrier density are considered. Special attention is paid to the understanding of edges and the emergence of edge states for zigzag edges. Atomistic tight binding and effective mass approaches to single particle calculations are performed. Furthermore, the theoretical and numerical treatment of electron-electron interactions at the mean-field, HF, DFT and configuration-interaction level is described in detail.
Tags from this library: No tags from this library for this title. Log in to add tags.
No physical items for this record

Single particle properties of graphene quantum dots -- Electron-electron interaction in gated graphene nanostructures -- Magnetic properties of gated graphene nanostructures -- Optical properties of graphene nanostructures.

This book reflects the current status of theoretical and experimental research of graphene based nanostructures, in particular quantum dots, at a level accessible to young researchers, graduate students, experimentalists and theorists. It presents the current state of research of graphene quantum dots, a single or few monolayer thick islands of graphene.  It introduces the reader to the electronic and optical properties of graphite, intercalated graphite and graphene, including Dirac fermions, Berry's phase associated with sublattices and valley degeneracy, covers single particle properties of graphene quantum dots, electron-electron interaction, magnetic properties and optical properties of gated graphene nanostructures. The electronic, optical and magnetic  properties of the graphene quantum dots as a function of size, shape, type of edge and carrier density are considered. Special attention is paid to the understanding of edges and the emergence of edge states for zigzag edges. Atomistic tight binding and effective mass approaches to single particle calculations are performed. Furthermore, the theoretical and numerical treatment of electron-electron interactions at the mean-field, HF, DFT and configuration-interaction level is described in detail.

There are no comments on this title.

to post a comment.
Share