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Interlayer Excitons with Large Optical Amplitudes in Layered van der Waals Materials

机译:层间van der Waals材料中具有大光学振幅的层间激子

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摘要

Vertically stacked two-dimensional materials form an ideal platform for controlling and exploiting light-matter interactions at the nanoscale. As a unique feature, these materials host electronic excitations of both intra- and interlayer type with distinctly different properties. In this Letter, using first-principles many-body calculations, we provide a detailed picture of the most prominent excitons in bilayer MoS2, a prototypical van der Waals material. By applying an electric field perpendicular to the bilayer, we explore the evolution of the excitonic states as the band alignment is varied from perfect lineup to staggered (Type II) alignment. For moderate field strengths, the lowest exciton has intralayer character and is almost independent of the electric field. However, we find higher lying excitons that have interlayer character. They can be described as linear combinations of the intralayer B exciton and optically dark charge transfer excitons, and interestingly, these mixed interlayer excitons have strong optical amplitude and can be easily tuned by the electric field. The first-principles results can be accurately reproduced by a simple excitonic model Hamiltonian that can be straightforwardly generalized to more complex van der Waals materials.
机译:垂直堆叠的二维材料,形成了用于控制和利用纳米级的浅品相互作用的理想平台。作为一种独特的特征,这些材料宿主具有明显不同的性质的内部和层间类型的电子激发。在这封信中,使用多原则的多体计算,我们提供了双层MOS2中最突出的激情的详细情况,这是一种原型van der Waals材料。通过将垂直于双层的电场施加,我们探讨了激发器状态的演变,因为带对准从完美的阵容变化到交错(II型)对齐。对于适度的场地优势,最低的激子具有钻子特征,并且几乎与电场无关。但是,我们发现具有层间性格的更高躺着的激子。它们可以被描述为intralayerb激子和光学暗电荷转移激子的线性组合,有趣的是,这些混合层间激子具有强光幅度,并且可以通过电场容易地调节。可以通过简单的兴奋模型Hamiltonian准确地再现第一原理结果,可以直接推广到更复杂的范德瓦尔斯材料。

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