论文标题

长波长WS $ _ {2} $Moiré超级晶格中的应变依赖性结构和电子重建

Strain-dependent structural and electronic reconstructions in long-wavelength WS$_{2}$ moiré superlattices

论文作者

Li, Kai-Hui, Xiao, Fei-Ping, Guan, Wen, Xiao, Yu-Long, Xu, Chang, Zhang, Jin-Ding, Lin, Chen-Fang, Li, Dong, Tong, Qing-Jun, Li, Si-Yu, Pan, An-Lian

论文摘要

在堆叠过渡金属二核苷(TMDS)的长波长Moiré超级晶格中,结构重建无处不在,据报道,这显着影响了其电子特性。但是,仍然缺乏对晶格重建和电子特性改变之间相互作用的完全理解,以及它们对重建的TMDSMoiré超级晶格中外部扰动的进一步响应仍然缺乏。在这里,使用扫描隧道显微镜(STM)和扫描隧道光谱(STS)结合了第一原理计算,我们研究了与长波长H-Type H-Type WS $ _ {2} $Moiré超级替代的菌株依赖性结构重建及其相关电子重建。我们观察到,长波长WS $ _ {2} $Moiré超级晶格经历了强大的原子重建转换为六角形螺钉位错阵列,将大型H堆积域分开。在我们的实验中,莫伊尔超级晶格的几何形状和moiré波长都被外部内部异晶局大调节。值得注意的是,STS的测量进一步表明,在该系统中,应应变诱导的晶格变形敏感地调节了K点在传统带中的位置,其中最大能量转移达到300 MeV。我们的结果表明,内层菌株在确定TMDMoiré超晶格中的结构和电子特性中起着至关重要的作用。

In long-wavelength moiré superlattices of stacked transition metal dichalcogenides (TMDs), structural reconstruction ubiquitously occurs, which has reported to impact significantly their electronic properties. However, complete microscopic understandings of the interplay between the lattice reconstruction and alteration of electronic properties, and their further response to external perturbations in the reconstructed TMDs moiré superlattice are still lacking. Here, using scanning tunneling microscopy (STM) and scanning tunneling spectroscopy (STS) combined with first-principles calculation, we study the strain-dependent structural reconstruction and its correlated electronic reconstruction in long-wavelength H-type WS$_{2}$ moiré superlattice at nanometer scale. We observe that the long-wavelength WS$_{2}$ moiré superlattices experiencing strong atomic reconstruction transform into a hexagonal array of screw dislocations separating large-sized H-stacked domains. Both the geometry and the moiré wavelength of the moiré superlattice are dramatically tuned by external intralayer heterostrain in our experiment. Remarkably, the STS measurements further demonstrate that the location of the K point in conduction band is modulated sensitively by strain-induced lattice deformation at nanometer scale in this system, with the maximum energy shift reaching up to 300 meV. Our results highlight that intralayer strain plays a vital role in determining structural and electronic properties in TMD moiré superlattice.

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