超晶格
凝聚态物理
声波
量子隧道
振幅
物理
声表面波
压电
曲面(拓扑)
量子
格子(音乐)
表面波
材料科学
带隙
离子声波
单层
电子能带结构
光学
瑞利波
石墨烯
基质(水族馆)
物理声学
能量(信号处理)
条状物
衍射
弹性能
量子光学
反对称关系
周期电位
雷
作者
Eli Meril,Unmesh Ghorai,Tobias Holder,Rafi Bistritzer
摘要
We introduce a new class of tunable periodic structures, formed by launching two obliquely propagating surface acoustic waves on a piezoelectric substrate that supports a two-dimensional quantum material. The resulting acoustoelectric superlattice exhibits two salient features. First, its periodicity is widely tunable, spanning a length scale intermediate between moiré superlattices and optical lattices, enabling the formation of narrow, topologically nontrivial energy bands. Second, unlike moiré systems, where the superlattice amplitude is set by intrinsic interlayer tunneling and lattice relaxation, the amplitude of the acoustoelectric potential is externally tunable via the surface acoustic wave power. Using massive monolayer graphene as an example, we demonstrate that varying the frequencies and power of the surface acoustic waves enables in-situ control over the band structure of the 2D material, generating flat bands and nontrivial valley Chern numbers, featuring a highly localized Berry curvature.
科研通智能强力驱动
Strongly Powered by AbleSci AI