Visualizing Large Facet-Dependent Electronic Tuning in Monolayer WSe 2 on Au Surfaces.
Bo ZhuYanwei WuZeyi ZhouWenjie ZhengYuchen HuYongfei JiLingyao KongRui ZhangPublished in: Nano letters (2022)
Two-dimensional transition metal dichalcogenides (TMDs) have shown great importance in the development of novel ultrathin optoelectronic devices owing to their exceptional electronic and photonic properties. Effectively tuning their electronic band structures is not only desired in electronics applications but also can facilitate more novel properties. In this work, we demonstrate that large electronic tuning on a WSe 2 monolayer can be realized by different facets of a Au-foil substrate, forming in-plane p-n junctions with remarkable built-in electric fields. This facet-dependent tuning effect is directly visualized by using scanning tunneling microscopy and differential conductance (d I/ d V ) spectroscopy. First-principles calculations reveal that the atomic arrangement of the Au facet effectively changes the interfacial coupling and charge transfer, leading to different magnitudes of charge doping in WSe 2 . Our study would be beneficial for future customized fabrication of TMD-junction devices via facet-specific construction on the substrate.
Keyphrases
- high resolution
- transition metal
- single molecule
- sensitive detection
- reduced graphene oxide
- molecular dynamics simulations
- dna methylation
- high throughput
- gene expression
- living cells
- amino acid
- optical coherence tomography
- density functional theory
- gold nanoparticles
- visible light
- tissue engineering
- metal organic framework
- high density