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Dirac Electrons in a Dodecagonal Graphene Quasicrystal

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arxiv 1804.04261 v1 pith:IY3ZUXWR submitted 2018-04-12 cond-mat.mes-hall cond-mat.mtrl-sci

Dirac Electrons in a Dodecagonal Graphene Quasicrystal

classification cond-mat.mes-hall cond-mat.mtrl-sci
keywords symmetrydiracquasicrystalelectronsgrapheneangledodecagonalobserved
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum states of quasiparticles in solids are dictated by symmetry. Thus, a discovery of unconventional symmetry can provide a new opportunity to reach a novel quantum state. Recently, Dirac and Weyl electrons have been observed in crystals with discrete translational symmetry. Here we experimentally demonstrate Dirac electrons in a two-dimensional quasicrystal without translational symmetry. A dodecagonal quasicrystal was realized by epitaxial growth of twisted bilayer graphene rotated exactly 30 degree. The graphene quasicrystal was grown up to a millimeter scale on SiC(0001) surface while maintaining the single rotation angle over an entire sample and was successfully isolated from a substrate, demonstrating its structural and chemical stability under ambient conditions. Multiple Dirac cone replicated with the 12-fold rotational symmetry were observed in angle resolved photoemission spectra, showing its unique electronic structures with anomalous strong interlayer coupling with quasi-periodicity. Our study provides a new way to explore physical properties of relativistic fermions with controllable quasicrystalline orders.

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