论文标题
MoiréTraintronics:可重新配置量子材料的通用平台
Moiré straintronics: a universal platform for reconfigurable quantum materials
论文作者
论文摘要
大型二维(2D)Moiré超级晶格正在推动设计器量子材料的革命。这些超晶格中的电子相互作用很大程度上取决于Moiré模式的周期性和对称性,并严格确定了新兴的特性和相图。迄今为止,两层之间的相对扭曲角已成为给定组成晶体选择的主要调整参数。在这里,我们建立了应变,作为一种强大的机制,可在原位修改Moiré的周期性和对称性。我们在任何双层结构上的平面内杂质下开发了莫伊尔晶格的分析精确数学描述。我们证明了在临界点附近微调Moiré晶格的能力,例如双层石墨烯中的魔法角度,或完全重新配置Moiré晶格对称性,超出了未经培养的成分晶体所施加的。由于这种前所未有的同时控制了电子相互作用和晶格对称性的强度,因此2D HeteroStrain为工程,调音和探针非常相关的Moiré材料提供了一个强大的平台。
Large scale two-dimensional (2D) moiré superlattices are driving a revolution in designer quantum materials. The electronic interactions in these superlattices, strongly dependent on the periodicity and symmetry of the moiré pattern, critically determine the emergent properties and phase diagrams. To date, the relative twist angle between two layers has been the primary tuning parameter for a given choice of constituent crystals. Here, we establish strain as a powerful mechanism to in-situ modify the moiré periodicity and symmetry. We develop an analytically exact mathematical description for the moiré lattice under arbitrary in-plane heterostrain acting on any bilayer structure. We demonstrate the ability to fine-tune the moiré lattice near critical points, such as the magic angle in bilayer graphene, or fully reconfigure the moiré lattice symmetry beyond that imposed by the unstrained constituent crystals. Due to this unprecedented simultaneous control over the strength of electronic interactions and lattice symmetry, 2D heterostrain provides a powerful platform to engineer, tune, and probe strongly correlated moiré materials.