双层石墨烯
扭转
石墨烯
双层
凝聚态物理
材料科学
纳米技术
物理
几何学
化学
膜
数学
生物化学
作者
Jiawei Yu,Guihao Jia,Qian Li,Zhan, Zhen,Yuyang Wang,Kebin Xiao,Yongkang Ju,Hong‐Yun Zhang,Zhiqiang Hu,Yunkai Guo,Biao Lian,Peizhe Tang,Pantaleón, Pierre A.,Shuyun Zhou,Guinea, Francisco,Qi‐Kun Xue,Wei Li
标识
DOI:10.48550/arxiv.2406.20040
摘要
In twisted bilayer graphene (TBG) devices, local strains frequently coexist and intertwine with the twist-angle-dependent moiré superlattice, significantly influencing the electronic properties of TBG, yet their combined effects remain incompletely understood. Here, using low-temperature scanning tunneling microscopy, we study a TBG device exhibiting both a continuous twist-angle gradient from 0.35° to 1.30° and spatially varying strain fields, spanning the first (1.1°), second (0.5°) and third (0.3°) magic angles. We visualize the evolution of flat and remote bands in energy and real space with atomic resolution. Near the first magic angle, we discover an anomalous spectral weight transfer between the two flat band peaks, signifying the role of strain and electronic correlations, as further evidenced by an unusual spatial dispersion of these peaks within a moiré unit cell. In contrast, remote band peak energy offers a strain-insensitive indicator of the local twist angle. Structural analysis further reveals non-negligible shear strain across the sample. All observations are quantitatively reproduced by a continuum model that incorporates heterostrain and a self-consistent Hartree potential, revealing the critical but unexplored role of shear strain in shaping the low-energy electronic landscape of TBG.
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