论文标题
通过层间呼吸模式的拉曼成像和MoiréPhonons大规模映射Moiré超级晶格
Large-scale mapping of moiré superlattices by Raman imaging of interlayer breathing mode and moiré phonons
论文作者
论文摘要
Moiré超晶格可以在扭曲的Van-der-Waals材料中诱导相关的电子相。强烈相关的量子现象出现,例如超导性和莫特构造状态。但是,通过人造堆叠产生的莫伊尔超级晶格可能是非常不均匀的,这阻碍了莫伊尔时期与新兴的电气和光学特性之间明确相关的发展。在这里,我们在扭曲的双层过渡金属二盐元中证明了低频拉曼散射不仅可以用于检测原子重建,而且还可以绘制出大面积上的Moirélattice的不均匀性。该方法是基于发现的发现,即中间呼吸模式和Moiré声子都非常容易受到Moiré时期的影响并提供特征性的指纹。我们以〜0.1°的有效扭角分辨率可视化微观域。可以方便地实施这种环境非侵入性方法,以表征和预设样品的高质量区域,用于随后的设备制造以及运输和光学实验。
Moiré superlattices can induce correlated-electronic phases in twisted van-der-Waals materials. Strongly correlated quantum phenomena emerge, such as superconductivity and the Mott-insulating state. However, moiré superlattices produced through artificial stacking can be quite inhomogeneous, which hampers the development of a clear correlation between the moiré period and the emerging electrical and optical properties. Here we demonstrate in twisted-bilayer transition-metal dichalcogenides that low-frequency Raman scattering can be utilized not only to detect atomic reconstruction, but also to map out the inhomogeneity of the moiré lattice over large areas. The method is established based on the finding that both the interlayer-breathing mode and moiré phonons are highly susceptible to the moiré period and provide characteristic fingerprints. We visualize microscopic domains with an effective twist-angle resolution of ~0.1°. This ambient non-invasive methodology can be conveniently implemented to characterize and preselect high-quality areas of samples for subsequent device fabrication, and for transport and optical experiments.