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单层 WSe2 中激子的共振内量子跃迁和飞秒辐射衰减。

Resonant internal quantum transitions and femtosecond radiative decay of excitons in monolayer WSe2.

机构信息

Department of Physics, University of Regensburg, D-93040 Regensburg, Germany.

Institute of Physics, University of Münster, D-48149 Münster, Germany.

出版信息

Nat Mater. 2015 Sep;14(9):889-93. doi: 10.1038/nmat4356. Epub 2015 Jul 13.

Abstract

Atomically thin two-dimensional crystals have revolutionized materials science. In particular, monolayer transition metal dichalcogenides promise novel optoelectronic applications, owing to their direct energy gaps in the optical range. Their electronic and optical properties are dominated by Coulomb-bound electron-hole pairs called excitons, whose unusual internal structure, symmetry, many-body effects and dynamics have been vividly discussed. Here we report the first direct experimental access to all 1s A excitons, regardless of momentum--inside and outside the radiative cone--in single-layer WSe2. Phase-locked mid-infrared pulses reveal the internal orbital 1s-2p resonance, which is highly sensitive to the shape of the excitonic envelope functions and provides accurate transition energies, oscillator strengths, densities and linewidths. Remarkably, the observed decay dynamics indicates an ultrafast radiative annihilation of small-momentum excitons within 150 fs, whereas Auger recombination prevails for optically dark states. The results provide a comprehensive view of excitons and introduce a new degree of freedom for quantum control, optoelectronics and valleytronics of dichalcogenide monolayers.

摘要

原子层状二维晶体彻底改变了材料科学。特别是,单层过渡金属二卤化物由于在光学范围内具有直接能隙,有望实现新颖的光电应用。其电子和光学性质由库仑束缚的电子-空穴对(称为激子)主导,其独特的内部结构、对称性、多体效应和动力学已得到了生动的讨论。在这里,我们首次直接实验获得了单层 WSe2 中所有 1s A 激子的信息,无论动量如何——在辐射锥内和外——。锁相同步的中红外脉冲揭示了内部轨道 1s-2p 共振,它对激子包络函数的形状非常敏感,并提供了准确的跃迁能量、振子强度、密度和线宽。值得注意的是,观察到的衰减动力学表明,小动量激子在 150 fs 内发生超快辐射复合,而对于光暗态则主要是俄歇复合。研究结果提供了激子的全面视图,并为二卤化物单层的量子控制、光电学和谷电子学引入了一个新的自由度。

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