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Coherent quantum dynamics of excitons in monolayer transition metal dichalcogenides

机译:单层过渡金属二卤化物中激子的相干量子动力学

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Transition metal dichalcogenides (TMDs) have garnered considerable interest in recent years owing to their layer thickness-dependent optoelectronic properties. In monolayer TMDs, the large carrier effective masses, strong quantum confinement, and reduced dielectric screening lead to pronounced exciton resonances with remarkably large binding energies and coupled spin and valley degrees of freedom (valley excitons). Coherent control of valley excitons for atomically thin optoelectronics and valleytronics requires understanding and quantifying sources of exciton decoherence. In this work, we reveal how exciton-exciton and exciton-phonon scattering influence the coherent quantum dynamics of valley excitons in monolayer TMDs, specifically tungsten diselenide (WSe_2), using two-dimensional coherent spectroscopy. Excitation-density and temperature dependent measurements of the homogeneous linewidth (inversely proportional to the optical coherence time) reveal that exciton-exciton and exciton-phonon interactions are significantly stronger compared to quasi-2D quantum wells and 3D bulk materials. The residual homogeneous linewidth extrapolated to zero excitation density and temperature is ~ 1.6 meV (equivalent to a coherence time of 0.4 ps), which is limited only by the population recombination lifetime in this sample.
机译:过渡金属二卤化物(TMD)由于其层厚度依赖性的光电特性,近年来引起了广泛的关注。在单层TMD中,较大的载流子有效质量,较强的量子限制和减少的介电屏蔽会导致显着的激子共振,并具有非常大的结合能以及耦合的自旋和谷自由度(谷激子)。原子薄电子和山谷电子学对山谷激子的相干控制需要了解和量化激子退相干的来源。在这项工作中,我们使用二维相干光谱法揭示了激子-激子和激子-声子散射如何影响单层TMD中谷类激子的相干量子动力学,特别是二硒化钨(WSe_2)。激发密度和温度的均一线宽(与光学相干时间成反比)的测量结果表明,与准2D量子阱和3D体材料相比,激子-激子和激子-声子的相互作用要强得多。外推至零激发密度和温度的残余均匀线宽约为1.6 meV(相当于0.4 ps的相干时间),仅受该样本中种群复合寿命的限制。

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