半导体
扭转
干扰(通信)
量子
量子干涉
光电子学
物理
材料科学
量子力学
电信
计算机科学
频道(广播)
几何学
数学
作者
Kai‐Qiang Lin,Paulo E. Faria,Jonas Bauer,Bo Peng,Bartomeu Monserrat,Martin Gmitra,Jaroslav Fabian,Sebastian Bange,John M. Lupton
标识
DOI:10.1038/s41467-021-21547-z
摘要
Twist-engineering of the electronic structure of van-der-Waals layered materials relies predominantly on band hybridization between layers. Band-edge states in transition-metal-dichalcogenide semiconductors are localized around the metal atoms at the center of the three-atom layer and are therefore not particularly susceptible to twisting. Here, we report that high-lying excitons in bilayer WSe2 can be tuned over 235 meV by twisting, with a twist-angle susceptibility of 8.1 meV/{\deg}, an order of magnitude larger than that of the band-edge A-exciton. This tunability arises because the electronic states associated with upper conduction bands delocalize into the chalcogenide atoms. The effect gives control over excitonic quantum interference, revealed in selective activation and deactivation of electromagnetically induced transparency (EIT) in second-harmonic generation. Such a degree of freedom does not exist in conventional dilute atomic-gas systems, where EIT was originally established, and allows us to shape the frequency dependence, i.e. the dispersion, of the optical nonlinearity.
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