论文标题
观察纳米棕榈中扭曲的双层石墨烯中电气可调的范霍夫奇异性
Observation of Electrically Tunable van Hove Singularities in Twisted Bilayer Graphene from nanoARPES
论文作者
论文摘要
通过在费米能量附近的状态密度的奇异性来触发相关现象的可能性仍然是一种引人入胜的途径,以设计量子材料的性质。在这方面,扭曲的双层石墨烯是一个关键材料,因为旋转石墨烯层产生的超晶格在费米能量附近引入了范霍夫奇异性和平坦带,从而导致许多相关相的出现,包括超导性。尽管已经探索了这些特性的扭曲角度依赖性,但到目前为止,在广泛的能量范围内,超晶格带的静电控制已被严重缺失。这项工作使用以纳米为中心的光点进行了功能性扭曲的双层石墨烯设备。选择了12.2 $^{\ Circ} $的扭曲角度,使得超级晶格的Brillouin区域足够大,可以在动量空间中识别Van Hove奇异性和平坦带段。这些特征的掺杂依赖性在0.4 eV的能量范围内提取,从而扩展了扭曲角和掺杂的组合,可以将它们放置在费米能量上,从而在扭曲的双层石墨烯中诱导新的相关电子相。
The possibility of triggering correlated phenomena by placing a singularity of the density of states near the Fermi energy remains an intriguing avenue towards engineering the properties of quantum materials. Twisted bilayer graphene is a key material in this regard because the superlattice produced by the rotated graphene layers introduces a van Hove singularity and flat bands near the Fermi energy that cause the emergence of numerous correlated phases, including superconductivity. While the twist angle-dependence of these properties has been explored, direct demonstration of electrostatic control of the superlattice bands over a wide energy range has, so far, been critically missing. This work examines a functional twisted bilayer graphene device using in-operando angle-resolved photoemission with a nano-focused light spot. A twist angle of 12.2$^{\circ}$ is selected such that the superlattice Brillouin zone is sufficiently large to enable identification of van Hove singularities and flat band segments in momentum space. The doping dependence of these features is extracted over an energy range of 0.4 eV, expanding the combinations of twist angle and doping where they can be placed at the Fermi energy and thereby induce new correlated electronic phases in twisted bilayer graphene.