论文标题

扭曲过渡金属二分法异源异质结构中的激子精细结构

Exciton fine structure in twisted transition metal dichalcogenide heterostructures

论文作者

Kundu, Sudipta, Amit, Tomer, Krishnamurthy, H. R., Jain, Manish, Refaely-Abramson, Sivan

论文摘要

过渡金属二北元化(TMD)异质结构的Moiré超级晶格产生与层间扭曲角有关的丰富的激子现象,并引起所涉及的量子状态的变化。此类系统中激子的理论计算通常基于模型Moiré潜力来减轻计算成本。然而,对主导激发的电子孔耦合的一开始,对于实现扭曲引起的光学选择规则的修改至关重要。在这项工作中,我们使用多体扰动理论来计算和分析扭曲TMD异质结构中扭曲角度和激子特性之间的关系。我们提出了一种将激子状态从MoiréBrillouin区域展开到单独层的Brillouin区域的一般方法。将此方法应用于扭曲的MOS $ _2 $/MOSE $ _2 $ BILAYER,我们发现光激发光谱由单独的单层中的电子和孔之间的混合过渡在不同的单层中的混合过渡主导,从而导致意外的和角度依赖的室内层和内层的杂交和内层的杂交。我们的发现为TMD异质结构中调整激子层 - 位置的设计途径是扭曲角度的函数。

Moiré superlattices of transition metal dichalcogenide (TMD) heterostructures give rise to rich excitonic phenomena associated with the interlayer twist angle and induced changes in the involved quantum states. Theoretical calculations of excitons in such systems are typically based on model moiré potentials to mitigate the computational cost. However, an ab initio understanding of the electron-hole coupling dominating the excitations is crucial to realize the twist-induced modifications of the optical selection rules. In this work we use many-body perturbation theory to compute and analyze the relation between twist angle and exciton properties in twisted TMD heterostructures. We present a general approach for unfolding excitonic states from the moiré Brillouin zone onto the Brillouin zones of the separate layers. Applying this method to a twisted MoS$_2$/MoSe$_2$ bilayer, we find that the optical excitation spectrum is dominated by mixed transitions between electrons and holes with different momenta in the separate monolayers, leading to unexpected and angle-dependent hybridization between interlayer and intralayer excitons. Our findings offer a design pathway for tuning exciton layer-localization in TMD heterostructures as a function of twist angle.

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