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Observation of Rydberg moiré excitons.

Qianying HuZhen ZhanHuiying CuiYalei ZhangFeng JinXuan ZhaoMingjie ZhangZhichuan WangQingming ZhangKenji WatanabeTakashi TaniguchiXuewei CaoWu-Ming LiuFengcheng WuShengjun YuanYang Xu
Published in: Science (New York, N.Y.) (2023)
Rydberg excitons, the solid-state counterparts of Rydberg atoms, have sparked considerable interest with regard to the harnessing of their quantum application potentials, but realizing their spatial confinement and manipulation poses a major challenge. Lately, the rise of two-dimensional moiré superlattices with highly tunable periodic potentials provides a possible pathway. Here, we experimentally demonstrate this capability through the spectroscopic evidence of Rydberg moiré excitons (X RM ), which are moiré-trapped Rydberg excitons in monolayer semiconductor tungsten diselenide adjacent to twisted bilayer graphene. In the strong coupling regime, the X RM manifest as multiple energy splittings, pronounced red shift, and narrowed linewidth in the reflectance spectra, highlighting their charge-transfer character wherein electron-hole separation is enforced by strongly asymmetric interlayer Coulomb interactions. Our findings establish the excitonic Rydberg states as candidates for exploitation in quantum technologies.
Keyphrases
  • solid state
  • room temperature
  • molecular dynamics
  • solar cells
  • molecular docking
  • big data
  • density functional theory
  • quantum dots