article Open AccessTop 1% cited
Emergence of superlattice Dirac points in graphene on hexagonal boron nitride
Nature Physics · 2012 · Vol. 8(5) · pp. 382–386
Matthew Yankowitz✉(University of Arizona)Jiamin Xue(University of Arizona)Daniel Cormode(University of Arizona)Javier Sanchez-Yamagishi(Massachusetts Institute of Technology)Kenji Watanabe(National Institute for Materials Science)Takashi Taniguchi(National Institute for Materials Science)Pablo Jarillo‐Herrero(Massachusetts Institute of Technology)Philippe Jacquod(University of Arizona)Brian J. LeRoy(University of Arizona)
Graphene research and applicationsTopological Materials and PhenomenaMetamaterials and Metasurfaces ApplicationsPhysicsBrillouin zoneGrapheneSuperlatticeCondensed matter physicsMassless particleDirac fermionFermi energyDirac (video compression format)Electronic band structure
Funding
- National Science Foundation
- U.S. Department of Energy
- Multidisciplinary University Research Initiative
- Office of Naval Research
- Division of Materials Research
- Basic Energy Sciences
- Army Research Office
- Army Research Laboratory
- Division of Materials Sciences and Engineering
Citations
1,142
FWCI
36.28
field-weighted impact
References
20
Percentile
100%
vs. same field & year
Citations per year
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References
Quantum interference and Klein tunnelling in graphene heterojunctions
Nature Physics · 2009 · 1,146 citations
Correlated electrons in high-temperature superconductors
Reviews of Modern Physics · 1994 · 3,104 citations
Die Reflexion von Elektronen an einem Potentialsprung nach der relativistischen Dynamik von Dirac
The European Physical Journal A · 1929 · 1,060 citations
Chiral tunnelling and the Klein paradox in graphene
Nature Physics · 2006 · 3,830 citations
The electronic properties of graphene
Reviews of Modern Physics · 2009 · 24,183 citations
Boron nitride substrates for high-quality graphene electronics
Nature Nanotechnology · 2010 · 6,917 citations
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