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Ultrafast formation of interlayer hot excitons in atomically thin MoS2/WS2 heterostructures

机译:原子薄的MoS2 / WS2异质结构中层间热激子的超快形成

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摘要

Van der Waals heterostructures composed of two-dimensional transition-metal dichalcogenides layers have recently emerged as a new family of materials, with great potential for atomically thin opto-electronic and photovoltaic applications. It is puzzling, however, that the photocurrent is yielded so efficiently in these structures, despite the apparent momentum mismatch between the intralayer/interlayer excitons during the charge transfer, as well as the tightly bound nature of the excitons in 2D geometry. Using the energy-state-resolved ultrafast visible/infrared microspectroscopy, we herein obtain unambiguous experimental evidence of the charge transfer intermediate state with excess energy, during the transition from an intralayer exciton to an interlayer exciton at the interface of a WS2/MoS2 heterostructure, and free carriers moving across the interface much faster than recombining into the intralayer excitons. The observations therefore explain how the remarkable charge transfer rate and photocurrent generation are achieved even with the aforementioned momentum mismatch and excitonic localization in 2D heterostructures and devices.
机译:最近,由二维过渡金属双金属卤化物层组成的范德华异质结构作为一种新型材料出现,在原子薄的光电和光伏应用中具有巨大潜力。然而,令人困惑的是,尽管在电荷转移过程中层内/层间激子之间存在明显的动量失配,以及激子在2D几何形状中的紧密结合性质,但在这些结构中如此高效地产生了光电流。使用能级解析的超快速可见/红外显微光谱,我们在WS2 / MoS2异质结构的界面上从层内激子过渡到层间激子的过程中,获得了具有过量能量的电荷转移中间态的明确实验证据,自由载流子在界面上的移动比重组到层内激子中要快得多。因此,这些观察结果解释了即使在二维异质结构和器件中存在上述动量失配和激子局部化的情况下,如何也实现了显着的电荷传输速率和光电流生成。

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