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Moir\'e Modulation of Charge Density Waves

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arxiv 2207.04861 v2 pith:IQSTRG5I submitted 2022-07-11 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords cdwsmoirsqrtdomainsthereangleschargeclose
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abstract

Here we investigate how charge density waves (CDW), inherent to a monolayer, are effected by creating twisted van der Waals structures. Homobilayers of metallic transition metal dichalcogenides (TMDs), at small twist angles where there is significant atomic reconstruction, are utilised as an example to investigate the interplay between the moir\'e domain structure and CDWs of different periods. For $\sqrt{3}\times\sqrt{3}$ CDWs, there is no geometric constraint to prevent the CDWs from propagating throughout the moir\'e structure. Whereas for $2\times2$ CDWs, to ensure the CDWs in each layer have the most favourable interactions in the domains, the CDW phase must be destroyed in the connecting domain walls. For $3\times3$ CDWs with twist angles close to 180 degree, moir\'e-scale triangular structures can form; while close to 0 degree, moir\'e-scale dimer domains occur. The star-of-David CDW ($\sqrt{13}\times\sqrt{13}$) is found to host CDWs in the domains only, since there is one low energy stacking configuration, similar to $2\times2$ CDWs. These predictions are offered for experimental verification in twisted bilayer metallic TMDs which host CDWs, and we hope this will stimulate further research on the interplay between the moir\'e supperlattice and CDW phases intrinsic to the comprising 2D materials.

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