论文标题

van der waal的异质结构中的扭曲角度依赖的层间激子寿命

Twist Angle Dependent Interlayer Exciton Lifetimes in van der Waals Heterostructures

论文作者

Choi, Junho, Florian, Matthias, Steinhoff, Alexander, Erben, Daniel, Tran, Kha, Kim, Dong Seob, Sun, Liuyang, Quan, Jiamin, Claassen, Robert, Majumder, Somak, Hollingsworth, Jennifer A., Taniguchi, Takashi, Watanabe, Kenji, Ueno, Keiji, Singh, Akshay, Moody, Galan, Jahnke, Frank, Li, Xiaoqin

论文摘要

在通过堆叠两个过渡金属二核苷的单层形成的范德华(VDW)异质结构中,形成了具有高度可调性能的多个激子共振,并受到垂直和侧向限制。我们研究了如何使用独特的控制旋钮,即两个单层之间的扭角来控制激子动力学。我们观察到,$ \ text {mose} _ {\ text {2}} $/$/$ \ text {wse} _ {\ text {2}} $ twisted biLayers(tbls)在扭曲角度从扭曲角度变化时,与comp $^3.5 $ 3.5 $^3.5。使用低能连续模型,我们从理论上分离了两种影响Interamayer Inceciton辐射寿命的领先机制。在动量空间中向间接转向的转变,扭曲角度越来越大,而莫伊尔电势的能量调制都对层间激子的寿命产生了重大影响。我们进一步预测了具有不同扭曲角度的TBL中层间激子寿命的不同温度依赖性,这部分通过实验验证。尽管许多最近的研究强调了VDW TBL中的扭角如何通过多体相互作用来设计基态和量子阶段,但我们的研究探讨了其在控制光学激发态的动态方面的作用,从而扩展了“ Twistronics”的概念应用。

In van der Waals (vdW) heterostructures formed by stacking two monolayers of transition metal dichalcogenides, multiple exciton resonances with highly tunable properties are formed and subject to both vertical and lateral confinement. We investigate how a unique control knob, the twist angle between the two monolayers, can be used to control the exciton dynamics. We observe that the interlayer exciton lifetimes in $\text{MoSe}_{\text{2}}$/$\text{WSe}_{\text{2}}$ twisted bilayers (TBLs) change by one order of magnitude when the twist angle is varied from 1$^\circ$ to 3.5$^\circ$. Using a low-energy continuum model, we theoretically separate two leading mechanisms that influence interlayer exciton radiative lifetimes. The shift to indirect transitions in the momentum space with an increasing twist angle and the energy modulation from the moiré potential both have a significant impact on interlayer exciton lifetimes. We further predict distinct temperature dependence of interlayer exciton lifetimes in TBLs with different twist angles, which is partially validated by experiments. While many recent studies have highlighted how the twist angle in a vdW TBL can be used to engineer the ground states and quantum phases due to many-body interaction, our studies explore its role in controlling the dynamics of optically excited states, thus, expanding the conceptual applications of "twistronics".

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