| Literature DB >> 34242447 |
Kai-Qiang Lin1, Johannes Holler1, Jonas M Bauer1, Philipp Parzefall1, Marten Scheuck1, Bo Peng2, Tobias Korn3, Sebastian Bange1, John M Lupton1, Christian Schüller1.
Abstract
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, it is demonstrated 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. Hyperspectral Raman imaging visualizes microscopic domains of a 5° twisted-bilayer sample with an effective twist-angle resolution of about 0.1°. This ambient methodology can be conveniently implemented to characterize and preselect high-quality areas of samples for subsequent device fabrication, and for transport and optical experiments.Entities:
Keywords: hyperspectral Raman imaging; interlayer breathing modes; low-frequency Raman scattering; moiré phonons; moiré superlattices
Year: 2021 PMID: 34242447 DOI: 10.1002/adma.202008333
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849