电场
异质结
材料科学
光谱学
门控
斯塔克效应
光电子学
电位
量子限制斯塔克效应
绝缘体(电)
价(化学)
原子物理学
光电发射光谱学
X射线光电子能谱
分子物理学
激子
双层
势能
吸收光谱法
电子结构
化学物理
库仑
电子光谱学
再分配(选举)
静电学
载流子
作者
Louisa Scholz,Patrick Amsalem,Lennart Frohloff,Rongbin Wang,Emily Albert,Kan Tang,Stephen Barlow,Seth R. Marder,Norbert Koch
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-09-08
卷期号:19 (36): 32693-32704
标识
DOI:10.1021/acsnano.5c10363
摘要
Electric gating in atomically thin field-effect devices based on transition-metal dichalcogenides has recently been employed to manipulate their excitonic states, even producing exotic phases of matter, such as an excitonic insulator or Bose-Einstein condensate. Here, we mimic the electric gating effect of a bilayer-MoS2 on graphite by charge transfer induced by the adsorption of molecular p- and n-type dopants. The electric fields produced are evaluated from the electronic energy-level realignment and Stark splitting determined by X-ray and UV photoelectron spectroscopy measurements and compare very well with literature values obtained by optical spectroscopy for similar systems. We then show that analysis of the inhomogeneous broadening and energy shifts of the quantum-well states of the valence band allows extraction of the full electric potential profile and charge-density redistribution across the entire heterojunction with atomic-scale precision, which is not accessible by other methods.
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