堆积
凝聚态物理
超晶格
材料科学
应变工程
石墨烯
双层石墨烯
范德瓦尔斯力
超导电性
电子结构
静水压力
纳米技术
物理
分子
量子力学
热力学
相变
核磁共振
作者
Yuan Hou,Jingzhuo Zhou,Minmin Xue,Maolin Yu,Ying Han,Zhuhua Zhang,Yang Lü
出处
期刊:Small
[Wiley]
日期:2024-04-15
卷期号:21 (28): e2311185-e2311185
被引量:33
标识
DOI:10.1002/smll.202311185
摘要
Abstract The layer‐by‐layer stacked van der Waals structures (termed vdW hetero/homostructures) offer a new paradigm for materials design—their physical properties can be tuned by the vertical stacking sequence as well as by adding a mechanical twist, stretch, and hydrostatic pressure to the atomic structure. In particular, simple twisting and stacking of two layers of graphene can form a uniform and ordered Moiré superlattice, which can effectively modulate the electrons of graphene layers and lead to the discovery of unconventional superconductivity and strong correlations. However, the twist angle of twisted bilayer graphene (tBLG) is almost unchangeable once the interlayer stacking is determined, while applying mechanical elastic strain provides an alternative way to deeply regulate the electronic structure by controlling the lattice spacing and symmetry. In this review, diverse experimental advances are introduced in straining tBLG by in‐plane and out‐of‐plane modes, followed by the characterizations and calculations toward quantitatively tuning the strain‐engineered electronic structures. It is further discussed that the structural relaxation in strained Moiré superlattice and its influence on electronic structures. Finally, the conclusion entails prospects for opportunities of strained twisted 2D materials, discussions on existing challenges, and an outlook on the intriguing emerging field, namely “strain‐twistronics”.
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