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首页> 外文期刊>Scientific reports. >Engineering the Charge Transfer in all 2D Graphene-Nanoplatelets Heterostructure Photodetectors
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Engineering the Charge Transfer in all 2D Graphene-Nanoplatelets Heterostructure Photodetectors

机译:在所有2D石墨烯-纳米异质结构光电探测器中设计电荷转移

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摘要

Two dimensional layered (i.e. van der Waals) heterostructures open up great prospects, especially in photodetector applications. In this context, the control of the charge transfer between the constituting layers is of crucial importance. Compared to bulk or 0D system, 2D materials are characterized by a large exciton binding energy (0.1-1?eV) which considerably affects the magnitude of the charge transfer. Here we investigate a model system made from colloidal 2D CdSe nanoplatelets and epitaxial graphene in a phototransistor configuration. We demonstrate that using a heterostructured layered material, we can tune the magnitude and the direction (i.e. electron or hole) of the charge transfer. We further evidence that graphene functionalization by nanocrystals only leads to a limited change in the magnitude of the 1/f noise. These results draw some new directions to design van der Waals heterostructures with enhanced optoelectronic properties.
机译:二维分层(即范德华)异质结构开辟了广阔的前景,特别是在光电探测器应用中。在这种情况下,控制组成层之间的电荷转移至关重要。与本体或0D系统相比,2D材料的特征在于大的激子结合能(0.1-1?eV),极大地影响了电荷转移的幅度。在这里,我们研究由胶态2D CdSe纳米片和外延石墨烯制成的光电晶体管配置的模型系统。我们证明了使用异质结构层状材料,我们可以调整电荷转移的大小和方向(即电子或空穴)。我们进一步证明,纳米晶体对石墨烯的功能化只会导致1 / f噪声幅度的有限变化。这些结果为设计具有增强的光电性能的范德华异质结构提供了一些新的方向。

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