Correlation-Induced Symmetry-Broken States in Large-Angle Twisted Bilayer Graphene on MoS2

范霍夫奇点 凝聚态物理 双层石墨烯 魔法角 扫描隧道显微镜 物理 费米能级 石墨烯 费米能量 电子相关 电子 材料科学 量子力学 谱线
作者
Kaihui Li,Long‐Jing Yin,Chenglong Che,Shihao Zhang,Xueying Liu,Yulong Xiao,Songlong Liu,Qingjun Tong,Siyu Li,Anlian Pan
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (11): 7937-7944
标识
DOI:10.1021/acsnano.3c09993
摘要

Strongly correlated states commonly emerge in twisted bilayer graphene (TBG) with "magic-angle" (1.1°), where the electron–electron (e-e) interaction U becomes prominent relative to the small bandwidth W of the nearly flat band. However, the stringent requirement of this magic angle makes the sample preparation and the further application facing great challenges. Here, using scanning tunneling microscopy (STM) and spectroscopy (STS), we demonstrate that the correlation-induced symmetry-broken states can also be achieved in a 3.45° TBG, via engineering this nonmagic-angle TBG into regimes of U/W > 1. We enhance the e-e interaction through controlling the microscopic dielectric environment by using a MoS2 substrate. Simultaneously, the width of the low-energy van Hove singularity (VHS) peak is reduced by enhancing the interlayer coupling via STM tip modulation. When partially filled, the VHS peak exhibits a giant splitting into two states flanked by the Fermi level and shows a symmetry-broken LDOS distribution with a stripy charge order, which confirms the existence of strong correlation effect in our 3.45° TBG. Our result demonstrates the feasibility of the study and application of the correlation physics in TBGs with a wider range of twist angle.
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