论文标题

多层2H-MOSE中的高度可调的地面和激发态激发偶极偶极子$ _2 $

Highly Tunable Ground and Excited State Excitonic Dipoles in Multilayer 2H-MoSe$_2$

论文作者

Feng, Shun, Campbell, Aidan, Brotons-Gisbert, Mauro, Andres-Penares, Daniel, Baek, Hyeonjun, Taniguchi, Takashi, Watanabe, Kenji, Urbaszek, Bernhard, Gerber, Iann C., Gerardot, Brian D.

论文摘要

激子的基本特性取决于库仑结合电子和孔的自旋,山谷,能量和空间波形。在范德华材料中,可以通过层堆叠配置对这些属性进行广泛设计,从而创建具有静态平面外电偶极子的高度可调层中层激子,以牺牲振荡的平面内偶极偶极子的强度,负责轻质 - 摩擦偶联。在这里,我们表明,双层和三层2H-MOSE $ _2 $ CRYSTALS中的层间激子与地面($ 1S $)以及Intralayer A Intralayer a Excitons的兴奋状态($ 2S $)展示了电场驱动的耦合。我们证明,这些独特的激子物种的杂种状态可提供强大的振荡力强度,大型永久性偶极子(高达$ 0.73 \ pm 0.01 $ enm),高能量可调性(高达$ \ sim $ \ sim $ 200 meV),以及对旋转和山谷的完全控制,从而可以操纵Ickiton giptor的特征,从而超过-4 from -4 to -14 to +14 to +14 to +14 to +14。此外,我们观察到双层和三层激发状态($ 2S $)Interlayer Invecitons及其与InterAyer Intralayer Invictons州的耦合($ 1S $和$ 2S $)。我们的结果与具有自旋(层)选择性和超越标准密度功能理论计算的耦合振荡器模型吻合,促进了多层2H-MOSE $ _2 $,作为一个高度可调的平台,可探索与强光相互作用的激发量相互作用。

The fundamental properties of an exciton are determined by the spin, valley, energy, and spatial wavefunctions of the Coulomb bound electron and hole. In van der Waals materials, these attributes can be widely engineered through layer stacking configuration to create highly tunable interlayer excitons with static out-of-plane electric dipoles, at the expense of the strength of the oscillating in-plane dipole responsible for light-matter coupling. Here we show that interlayer excitons in bi- and tri-layer 2H-MoSe$_2$ crystals exhibit electric-field-driven coupling with the ground ($1s$) and excited states ($2s$) of the intralayer A excitons. We demonstrate that the hybrid states of these distinct exciton species provide strong oscillator strength, large permanent dipoles (up to $0.73 \pm 0.01$ enm), high energy tunability (up to $\sim$ 200 meV), and full control of the spin and valley characteristics such that the exciton g-factor can be manipulated over a large range (from -4 to +14). Further, we observe the bi- and tri-layer excited state ($2s$) interlayer excitons and their coupling with the intralayer excitons states ($1s$ and $2s$). Our results, in good agreement with a coupled oscillator model with spin (layer)-selectivity and beyond standard density functional theory calculations, promote multilayer 2H-MoSe$_2$ as a highly tunable platform to explore exciton-exciton interactions with strong light-matter interactions.

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