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首页> 外文期刊>Nature nanotechnology >Probing dark excitons in atomically thin semiconductors via near-field coupling to surface plasmon polaritons
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Probing dark excitons in atomically thin semiconductors via near-field coupling to surface plasmon polaritons

机译:通过近场耦合到表面等离子体极性恒星探测原子薄半导体中的黑暗激子

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Transition metal dichalcogenide (TMD) monolayers with a direct bandgap feature tightly bound excitons, strong spin-orbit coupling and spin-valley degrees of freedom(1-4). Depending on the spin configuration of the electron-hole pairs, intra-valley excitons of TMD monolayers can be either optically bright or dark(5-8). Dark excitons involve nominally spin-forbidden optical transitions with a zero in-plane transition dipole moment(9), making their detection with conventional far-field optical techniques challenging. Here, we introduce a method for probing the optical properties of two-dimensional materials via near-field coupling to surface plasmon polaritons (SPPs). This coupling selectively enhances optical transitions with dipole moments normal to the two-dimensional plane, enabling direct detection of dark excitons in TMD monolayers. When a WSe2 monolayer is placed on top of a single-crystal silver film(10), its emission into near-field-coupled SPPs displays new spectral features whose energies and dipole orientations are consistent with dark neutral and charged excitons. The SPP-based near-field spectroscopy significantly improves experimental capabilities for probing and manipulating exciton dynamics of atomically thin materials, thus opening up new avenues for realizing active metasurfaces and robust optoelectronic systems, with potential applications in information processing and communication(11).
机译:过渡金属二均甲基(TMD)单层具有直接带隙的单层,具有紧密结合的激子,强大的旋转轨道耦合和自由度自由度(1-4)。取决于电子孔对的旋转配置,TMD单层的谷内激子可以是光学亮或暗(5-8)。黑暗激子官涉及具有零飞地过渡偶极矩(9)的标称旋转禁止光学转换,使其检测以传统的远场光学技术具有挑战性。这里,我们介绍一种通过近场耦合探测二维材料的光学性质的方法,与表面等离子体极化子(SPP)探测。该偶联选择性地增强了具有正常到二维平面的偶极矩的光学过渡,从而能够直接检测TMD单层中的黑暗激子。当WSE2单层放置在单晶银膜(10)的顶部时,它进入近场耦合的SPPS的发射显示器,其能量和偶极方向与暗中性和充电的激子一致。基于SPP的近场光谱显着提高了用于探测和操纵原子薄材料的激子动态的实验能力,从而开辟了用于实现有源元措施和鲁棒光电系统的新途径,其具有信息处理和通信(11)中的潜在应用。

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