Breaking Rotational Symmetry in Supertwisted WS2Spirals via Moiré Magnification of Intrinsic Heterostrain

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Abstract

Twisted stacking of van der Waals materials with moiré superlattices offers a new way to tailor their physical properties via engineering of the crystal symmetry. Unlike well-studied twisted bilayers, little is known about the overall symmetry and symmetry-driven physical properties of continuously supertwisted multilayer structures. Here, using polarization-resolved second harmonic generation (SHG) microscopy, we report threefold (C3) rotational symmetry breaking in supertwisted WS2spirals grown on non-Euclidean surfaces, contrasting the intact symmetry of individual monolayers. This symmetry breaking is attributed to a geometrical magnifying effect in which small relative strain between adjacent twisted layers (heterostrain), verified by Raman spectroscopy and multiphysics simulations, generates significant distortion in the moiré pattern. Density-functional theory calculations can explain the C3symmetry breaking and unusual SHG response by the interlayer wave function coupling. These findings thus pave the way for further developments in the so-called "3D twistronics".

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Ci, P., Zhao, Y., Sun, M., Rho, Y., Chen, Y., Grigoropoulos, C. P., … Wu, J. (2022). Breaking Rotational Symmetry in Supertwisted WS2Spirals via Moiré Magnification of Intrinsic Heterostrain. Nano Letters, 22(22), 9027–9035. https://doi.org/10.1021/acs.nanolett.2c03347

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