Chen Yaoyao, Zhang Yu, Wang Wei, Song Xuan, Jia Liang-Guang, Zhang Can, Zhou Lili, Han Xu, Yang Hui-Xia, Liu Li-Wei, Si Chen, Gao Hong-Jun, Wang Ye-Liang
School of Integrated Circuits and Electronics, MIIT Key Laboratory for Low-Dimensional Quantum Structure and Devices, Beijing Institute of Technology, Beijing, 100081, P. R. China.
Advanced Research Institute of Multidisciplinary Sciences, Beijing Institute of Technology, Beijing, 100081, P. R. China.
Adv Sci (Weinh). 2024 Oct;11(37):e2306171. doi: 10.1002/advs.202306171. Epub 2023 Nov 20.
1D grain boundaries in transition metal dichalcogenides (TMDs) are ideal for investigating the collective electron behavior in confined systems. However, clear identification of atomic structures at the grain boundaries, as well as precise characterization of the electronic ground states, have largely been elusive. Here, direct evidence for the confined electronic states and the charge density modulations at mirror twin boundaries (MTBs) of monolayer NbSe, a representative charge-density-wave (CDW) metal, is provided. The scanning tunneling microscopy (STM) measurements, accompanied by the first-principles calculations, reveal that there are two types of MTBs in monolayer NbSe, both of which exhibit band bending effect and 1D boundary states. Moreover, the intrinsic CDW signatures of monolayer NbSe are dramatically suppressed as approaching an isolated MTB but can be either enhanced or suppressed in the MTB-constituted confined wedges. Such a phenomenon can be well explained by the MTB-CDW interference interactions. The results reveal the underlying physics of the confined electrons at MTBs of CDW metals, paving the way for the grain boundary engineering of the functionality.
过渡金属二硫属化物(TMDs)中的一维晶界是研究受限系统中集体电子行为的理想选择。然而,晶界处原子结构的清晰识别以及电子基态的精确表征在很大程度上仍然难以实现。在此,提供了关于单层NbSe(一种典型的电荷密度波(CDW)金属)镜面对称孪晶界(MTB)处受限电子态和电荷密度调制的直接证据。扫描隧道显微镜(STM)测量结合第一性原理计算表明,单层NbSe中存在两种类型的MTB,它们都表现出能带弯曲效应和一维边界态。此外,接近孤立的MTB时,单层NbSe的本征CDW特征会显著受到抑制,但在由MTB构成的受限楔形区域中,其特征可能增强或被抑制。这种现象可以通过MTB - CDW干涉相互作用得到很好的解释。这些结果揭示了CDW金属MTB处受限电子的潜在物理机制,为功能晶界工程铺平了道路。