Ci Penghong, Zhao Yuzhou, Sun Muhua, Rho Yoonsoo, Chen Yabin, Grigoropoulos Costas P, Jin Song, Li Xiaoguang, Wu Junqiao
Department of Materials Science and Engineering, University of California, Berkeley, California94720, United States.
Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California94720, United States.
Nano Lett. 2022 Nov 23;22(22):9027-9035. doi: 10.1021/acs.nanolett.2c03347. Epub 2022 Nov 8.
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 () rotational symmetry breaking in supertwisted WS spirals 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 symmetry 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".
具有莫尔超晶格的范德华材料的扭曲堆叠为通过晶体对称性工程来定制其物理性质提供了一种新方法。与经过充分研究的扭曲双层不同,对于连续超扭曲多层结构的整体对称性和对称性驱动的物理性质知之甚少。在此,我们使用偏振分辨二次谐波产生(SHG)显微镜,报告了在非欧几里得表面上生长的超扭曲WS螺旋中三重()旋转对称性破缺,这与单个单层的完整对称性形成对比。这种对称性破缺归因于一种几何放大效应,其中相邻扭曲层之间的小相对应变(异质应变)通过拉曼光谱和多物理模拟得到验证,在莫尔图案中产生了显著的畸变。密度泛函理论计算可以通过层间波函数耦合来解释对称性破缺和异常的SHG响应。因此,这些发现为所谓的“三维扭曲电子学”的进一步发展铺平了道路。