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Efficient Energy Transfer in In2Se3–MoSe2 van der Waals Heterostructures

机译:In2Se3 – MoSe2 van der Waals异质结构中的有效能量转移

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摘要

We show that bilayer α-phase In2Se3 and monolayer MoSe2 form a type-I band alignment, with both the conduction band minimum and the valence band maximum located in MoSe2. Samples were fabricated by a two-step chemical vapor deposition method. The photoluminescence yield of the heterostructure sample was found to be similar to monolayer MoSe2, indicating the lack of an efficient charge transfer from MoSe2 to In2Se3. This is further confirmed by the observation that the photocarrier lifetime in the heterostructure is similar to monolayer MoSe2, showing the lack of layer separation of the electrons and holes. Efficient energy transfer from In2Se3 to MoSe2 was observed by the sevenfold enhancement of the differential reflection signal in the heterostructure and its ultrashort rising time. Furthermore, we observed significant photoluminescence quenching in heterostructures formed by bulk In2Se3 and monolayer MoSe2, which suggests efficient charge transfer and therefore type-II band alignment. These findings suggest that α-In2Se3 ultrathinlayers can be effectively integrated as light-absorbing layers withother transition metal dichalcogenides for novel optoelectronic applications.
机译:我们显示双层α相In2Se3和单层MoSe2形成I型能带排列,导带最小值和价带最大值均位于MoSe2中。通过两步化学气相沉积法制备样品。发现异质结构样品的光致发光产率与单层MoSe2相似,表明缺乏从MoSe2到In2Se3的有效电荷转移。观察结果进一步证实,异质结构中的光载流子寿命与单层MoSe2相似,这表明电子和空穴之间没有层分离。通过异质结构中差分反射信号的七倍增强及其超短的上升时间,观察到了从In2Se3到MoSe2的有效能量转移。此外,我们观察到由本体In2Se3和单层MoSe2形成的异质结构中的显着光致发光猝灭,这表明有效的电荷转移以及因此的II型能带对准。这些发现表明α-In2Se 3 超薄层可以有效地集成为光吸收层用于新型光电应用的其他过渡金属二卤化二硫化镓。

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