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Asymmetric lateral graphene/h-BCN heterojunctions: A new method for separation of carriers in graphene nanoribbon photodetectors

机译:非对称横向石墨烯/ h-BCN异质结:分离石墨烯纳米带光电探测器中载流子的新方法

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Separation of photo-excited carriers (electrons and holes) is one of the most basic mechanisms needed in any photodetector and implies the efficiency of the photodetector. Applying electric field in the longitudinal direction of the photodetector channel is the traditional way to this end. The necessary electric field can be applied externally by a voltage bias or internally by a p-n junction, a Schottky barrier, etc. However, recently it is shown that any factor that causes any asymmetry in the channel of the photodetector can induce carrier separation. Asymmetric potential barriers can be used to this end. In this paper, a new method will be introduced. Recently, new 2D hybrid structures of carbon and boron-nitride, h-BCN, have been introduced. Different mole fractions of carbon, boron, and nitrogen atoms in these structures can lead to different band-gaps and electron affinities. This property can be used to construct different heterostructures. In this work, we use these heterostructures to produce asymmetric potential barriers for separation of photo-excited carriers. The structures are computed with a TB model and NEGF formalism in this paper and the results show that they can produce carrier separation.
机译:光激发载流子(电子和空穴)的分离是任何光电探测器所需的最基本的机制之一,它暗示了光电探测器的效率。为此目的,传统的方式是在光电探测器通道的纵向施加电场。必要的电场可以通过电压偏置在外部施加,也可以在内部通过p-n结,肖特基势垒等施加。然而,最近发现,任何在光电探测器通道中引起任何不对称性的因素都可以引起载流子分离。为此可以使用非对称势垒。本文将介绍一种新方法。最近,已经引入了碳和氮化硼的新型2D杂化结构h-BCN。这些结构中碳,硼和氮原子的摩尔分数不同会导致不同的带隙和电子亲和力。此属性可用于构造不同的异质结构。在这项工作中,我们使用这些异质结构产生不对称的势垒,用于分离光激发载流子。用TB模型和NEGF形式主义计算结构,结果表明它们可以产生载体分离。

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