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30 degrees-Twisted Bilayer Graphene Quasicrystals from Chemical Vapor Deposition

机译:从化学气相沉积中30度扭曲的双层石墨烯拟rAsicrystals

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The artificial stacking of atomically thin crystals suffers from intrinsic limitations in terms of control and reproducibility of the relative orientation of exfoliated flakes. This drawback is particularly severe when the properties of the system critically depends on the twist angle, as in the case of the dodecagonal quasicrystal formed by two graphene layers rotated by 30 degrees. Here we show that large-area 30 degrees-rotated bilayer graphene can be grown deterministically by chemical vapor deposition on Cu, eliminating the need of artificial assembly. The quasicrystals are easily transferred to arbitrary substrates and integrated in high-quality hexagonal boron nitride-encapsulated heterostructures, which we process into dual-gated devices exhibiting carrier mobility up to 10(5) cm(2)/(V s). From low-temperature magnetotransport, we find that the graphene quasicrystals effectively behave as uncoupled graphene layers, showing 8-fold degenerate quantum Hall states. This result indicates that the Dirac cones replica detected by previous photoemission experiments do not contribute to the electrical transport.
机译:原子薄晶体的人工堆叠在剥离薄片的相对取向的控制和再现性方面存在内在限制。当系统的性质尺寸尺寸取决于扭转角度时,该缺点特别严重,如在二十二侧转移的情况下由两个石墨烯层旋转30度的图形。在这里,我们表明,通过Cu上的化学气相沉积可以确定大面积30度旋转的双层石墨烯,消除了人造组装的需要。将拟CASRYSTALS易于转移到任意基材上并集成在高质量的六方硼氮化物封装的异质结构中,该封装异质结构,其进入具有高达10(5 )cm(2)/(V S)的载体迁移率的双门控装置。从低温磁化器,我们发现石墨烯拟读数有效地表现为未耦合的石墨烯层,显示出8倍的稀释量子霍尔州。该结果表明,先前光电运动实验检测的DIAC锥体复制品没有贡献电气运输。

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