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双层石墨烯中晶格失配导致的莫尔条纹重整化

Moiré band renormalization due to lattice mismatch in bilayer graphene.

作者信息

Zhu Xingchuan, Sun Junsong, Feng Shiping, Guo Huaiming

机构信息

Interdisciplinary Center for Fundamental and Frontier Sciences, Nanjing University of Science and Technology, Jiangyin, Jiangsu 214443, People's Republic of China.

School of Physics, Beihang University, Beijing 100191, People's Republic of China.

出版信息

J Phys Condens Matter. 2024 May 7;36(31). doi: 10.1088/1361-648X/ad43a3.

Abstract

We investigated the band renormalization caused by the compressive-strain-induced lattice mismatch in parallel AA stacked bilayer graphene using two complementary methods: the tight-binding approach and the low-energy continuum theory. While a large mismatch does not alter the low-energy bands, a small one reduces the bandwidth of the low-energy bands along with a decrease in the Fermi velocity. In the tiny-mismatch regime, the low-energy continuum theory reveals that the long-period moiré pattern extensively renormalizes the low-energy bands, resulting in a significant reduction of bandwidth. Meanwhile, the Fermi velocity exhibits an oscillatory behavior and approaches zero at specific mismatches. However, the resulting low-energy bands are not perfectly isolated flat, as seen in twisted bilayer graphene at magic angles. These findings provide a deeper understanding of moiré physics and offer valuable guidance for related experimental studies in creating moiré superlattices using two-dimensional van der Waals heterostructures.

摘要

我们使用两种互补方法研究了平行AA堆叠双层石墨烯中由压缩应变诱导的晶格失配引起的能带重整化:紧束缚方法和低能连续体理论。虽然大的失配不会改变低能能带,但小的失配会降低低能能带的带宽,同时费米速度也会降低。在微小失配 regime 中,低能连续体理论表明,长周期莫尔条纹图案广泛地重整了低能能带,导致带宽显著减小。同时,费米速度表现出振荡行为,并在特定失配处趋近于零。然而,所得到的低能能带并不像在魔角扭曲双层石墨烯中那样是完全孤立的平带。这些发现为莫尔物理学提供了更深入的理解,并为利用二维范德华异质结构创建莫尔超晶格的相关实验研究提供了有价值的指导。

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