| Literature DB >> 29954987 |
Sung Joon Ahn1, Pilkyung Moon2,3, Tae-Hoon Kim4, Hyun-Woo Kim1, Ha-Chul Shin1, Eun Hye Kim1, Hyun Woo Cha4, Se-Jong Kahng5, Philip Kim6, Mikito Koshino7, Young-Woo Son8, Cheol-Woong Yang9, Joung Real Ahn10,11.
Abstract
Quantum states of quasiparticles in solids are dictated by symmetry. We have experimentally demonstrated quantum states of Dirac electrons in a two-dimensional quasicrystal without translational symmetry. A dodecagonal quasicrystalline order was realized by epitaxial growth of twisted bilayer graphene rotated exactly 30°. We grew the graphene quasicrystal up to a millimeter scale on a silicon carbide surface while maintaining the single rotation angle over an entire sample and successfully isolated the quasicrystal from a substrate, demonstrating its structural and chemical stability under ambient conditions. Multiple Dirac cones replicated with the 12-fold rotational symmetry were observed in angle-resolved photoemission spectra, which revealed anomalous strong interlayer coupling with quasi-periodicity. Our study provides a way to explore physical properties of relativistic fermions with controllable quasicrystalline orders.Entities:
Year: 2018 PMID: 29954987 DOI: 10.1126/science.aar8412
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728