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dc.contributor.author
Stampfer, Christoph
dc.contributor.author
Fringes, Stefan
dc.contributor.author
Güttinger, Johannes
dc.contributor.author
Molitor, Françoise
dc.contributor.author
Volk, Christian
dc.contributor.author
Terrés, Bernat
dc.contributor.author
Dauber, Jan
dc.contributor.author
Engels, Stephan
dc.contributor.author
Schnez, Stefan
dc.contributor.author
Jacobsen, Arnhild
dc.contributor.author
Dröscher, Susanne
dc.contributor.author
Ihn, Thomas M.
dc.contributor.author
Ensslin, Klaus
dc.date.accessioned
2022-05-16T15:43:05Z
dc.date.available
2017-06-09T13:12:42Z
dc.date.available
2022-05-16T15:43:05Z
dc.date.issued
2011-09
dc.identifier.issn
2095-0462
dc.identifier.issn
2095-0470
dc.identifier.other
10.1007/s11467-011-0182-3
en_US
dc.identifier.uri
http://hdl.handle.net/20.500.11850/38525
dc.description.abstract
Graphene nanostructures are promising candidates for future nanoelectronics and solid-state quantum information technology. In this review we provide an overview of a number of electron transport experiments on etched graphene nanostructures. We briefly revisit the electronic properties and the transport characteristics of bulk, i.e., two-dimensional graphene. The fabrication techniques for making graphene nanostructures such as nanoribbons, single electron transistors and quantum dots, mainly based on a dry etching “paper-cutting” technique are discussed in detail. The limitations of the current fabrication technology are discussed when we outline the quantum transport properties of the nanostructured devices. In particular we focus here on transport through graphene nanoribbons and constrictions, single electron transistors as well as on graphene quantum dots including double quantum dots. These quasi-one-dimensional (nanoribbons) and quasi-zero-dimensional (quantum dots) graphene nanostructures show a clear route of how to overcome the gapless nature of graphene allowing the confinement of individual carriers and their control by lateral graphene gates and charge detectors. In particular, we emphasize that graphene quantum dots and double quantum dots are very promising systems for spin-based solid state quantum computation, since they are believed to have exceptionally long spin coherence times due to weak spin-orbit coupling and weak hyperfine interaction in graphene.
en_US
dc.language.iso
en
en_US
dc.publisher
Higher Education Press
en_US
dc.subject
Graphene
en_US
dc.subject
Nanostructures
en_US
dc.subject
Electron transport
en_US
dc.subject
Quantum dots
en_US
dc.title
Transport in graphene nanostructures
en_US
dc.type
Review Article
dc.date.published
2011-07-13
ethz.journal.title
Frontiers of Physics
ethz.journal.volume
6
en_US
ethz.journal.issue
3
en_US
ethz.journal.abbreviated
Front. Phys.
ethz.pages.start
271
en_US
ethz.pages.end
293
en_US
ethz.identifier.wos
ethz.publication.place
Beijing
en_US
ethz.publication.status
published
en_US
ethz.leitzahl
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02010 - Dep. Physik / Dep. of Physics::02505 - Laboratorium für Festkörperphysik / Laboratory for Solid State Physics::03439 - Ensslin, Klaus / Ensslin, Klaus
en_US
ethz.leitzahl
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02010 - Dep. Physik / Dep. of Physics::02505 - Laboratorium für Festkörperphysik / Laboratory for Solid State Physics::03439 - Ensslin, Klaus / Ensslin, Klaus::08835 - Ihn, Thomas (Tit.-Prof.)
en_US
ethz.leitzahl.certified
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02010 - Dep. Physik / Dep. of Physics::02505 - Laboratorium für Festkörperphysik / Laboratory for Solid State Physics::03439 - Ensslin, Klaus / Ensslin, Klaus
ethz.date.deposited
2017-06-09T13:13:05Z
ethz.source
ECIT
ethz.identifier.importid
imp59364e4fb9e8354884
ethz.ecitpid
pub:62177
ethz.eth
yes
en_US
ethz.availability
Metadata only
en_US
ethz.rosetta.installDate
2017-07-12T17:46:03Z
ethz.rosetta.lastUpdated
2023-02-07T02:47:41Z
ethz.rosetta.versionExported
true
ethz.COinS
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