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层状材料垂直异质结构中高效栅极可调的光电流产生。

Highly efficient gate-tunable photocurrent generation in vertical heterostructures of layered materials.

机构信息

1] Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095, USA [2] Department of Electronic and Electrical Engineering, Sungkyunkwan University, Suwon 440-746, Republic of Korea [3] Center for Integrated Nanostructure Physics, Institute for Basic Science (IBS), Sungkyunkwan University, Suwon 440-746, Republic of Korea.

出版信息

Nat Nanotechnol. 2013 Dec;8(12):952-8. doi: 10.1038/nnano.2013.219. Epub 2013 Oct 27.

Abstract

Layered materials of graphene and MoS₂, for example, have recently emerged as an exciting material system for future electronics and optoelectronics. Vertical integration of layered materials can enable the design of novel electronic and photonic devices. Here, we report highly efficient photocurrent generation from vertical heterostructures of layered materials. We show that vertically stacked graphene-MoS₂-graphene and graphene-MoS₂-metal junctions can be created with a broad junction area for efficient photon harvesting. The weak electrostatic screening effect of graphene allows the integration of single or dual gates under and/or above the vertical heterostructure to tune the band slope and photocurrent generation. We demonstrate that the amplitude and polarity of the photocurrent in the gated vertical heterostructures can be readily modulated by the electric field of an external gate to achieve a maximum external quantum efficiency of 55% and internal quantum efficiency up to 85%. Our study establishes a method to control photocarrier generation, separation and transport processes using an external electric field.

摘要

例如,石墨烯和 MoS₂ 的层状材料最近成为未来电子学和光电子学令人兴奋的材料体系。层状材料的垂直集成可以实现新型电子和光子器件的设计。在这里,我们报告了来自层状材料垂直异质结构的高效光电流产生。我们表明,可以通过堆叠石墨烯-MoS₂-石墨烯和石墨烯-MoS₂-金属结来创建具有宽结面积的高效光子收集的垂直异质结构。石墨烯的弱静电屏蔽效应允许在垂直异质结构下方和/或上方集成单个或双栅极,以调节能带斜率和光电流产生。我们证明,通过外部栅极的电场可以轻松调节栅控垂直异质结构中的光电流的幅度和极性,从而实现最大外量子效率为 55%,内部量子效率高达 85%。我们的研究建立了一种使用外部电场控制光生载流子产生、分离和输运过程的方法。

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