论文标题
可调式范霍夫奇异性和扭曲三层石墨烯中的相关状态
Tunable van Hove Singularities and Correlated States in Twisted Trilayer Graphene
论文作者
论文摘要
对现代冷凝物理物理学的理解和调整相关状态具有极大的兴趣和意义。最近发现的非常规的超导性和类似莫特的绝缘状态在魔法扭曲的双层石墨烯(TBLG)中提出了一个研究相关现象的独特平台,在这种平台上,库仑能量在淬灭的动能中占主导地位,这是杂交平面带的结果。将这种方法扩展到扭曲的多层石墨烯的情况下,由于系统的对称性降低,对频带结构的控制更高。在这里,我们研究了扭曲的三层石墨烯中的电子传输性能(TTLG,单层石墨烯异质结构的双层)。我们观察到范霍夫奇点的形成,这些奇异性是通过扭曲角度和位移场高度调节的,并且在最佳条件下(包括超导状态)可能会引起强相关效应。我们提供了观察到的电子结构的基本理论解释。
Understanding and tuning correlated states is of great interest and significance to modern condensed matter physics. The recent discovery of unconventional superconductivity and Mott-like insulating states in magic-angle twisted bilayer graphene (tBLG) presents a unique platform to study correlation phenomena, in which the Coulomb energy dominates over the quenched kinetic energy as a result of hybridized flat bands. Extending this approach to the case of twisted multilayer graphene would allow even higher control over the band structure because of the reduced symmetry of the system. Here, we study electronic transport properties in twisted trilayer graphene (tTLG, bilayer on top of monolayer graphene heterostructure). We observed the formation of van Hove singularities which are highly tunable by twist angle and displacement field and can cause strong correlation effects under optimum conditions, including superconducting states. We provide basic theoretical interpretation of the observed electronic structure.