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大面积、透明、灵活的红外探测器,使用 N 掺杂化学气相沉积生长的石墨烯形成的 P-N 结制造。

Large-area, transparent, and flexible infrared photodetector fabricated using P-N junctions formed by N-doping chemical vapor deposition grown graphene.

机构信息

Department of Chemical Engineering, Stanford University , Stanford, California 94305, United States.

出版信息

Nano Lett. 2014 Jul 9;14(7):3702-8. doi: 10.1021/nl500443j. Epub 2014 Jun 19.

Abstract

Graphene is a highly promising material for high speed, broadband, and multicolor photodetection. Because of its lack of bandgap, individually gated P- and N-regions are needed to fabricate photodetectors. Here we report a technique for making a large-area photodetector on the basis of controllable fabrication of graphene P-N junctions. Our selectively doped chemical vapor deposition (CVD) graphene photodetector showed a ∼5% modulation of conductance under global IR irradiation. By comparing devices of various geometries, we identify that both the homogeneous and the P-N junction regions contribute competitively to the photoresponse. Furthermore, we demonstrate that our two-terminal graphene photodetector can be fabricated on both transparent and flexible substrates without the need for complex fabrication processes used in electrically gated three-terminal devices. This represents the first demonstration of a fully transparent and flexible graphene-based IR photodetector that exhibits both good photoresponsivity and high bending capability. This simple approach should facilitate the development of next generation high-performance IR photodetectors.

摘要

石墨烯是一种极具前途的高速、宽带和多色光电探测器材料。由于其缺乏带隙,需要单独的栅极 P 区和 N 区来制造光电探测器。在这里,我们报告了一种基于可控石墨烯 P-N 结制造的大面积光电探测器技术。我们的选择性掺杂化学气相沉积(CVD)石墨烯光电探测器在全局红外辐照下表现出约 5%的电导调制。通过比较各种几何形状的器件,我们确定均匀区和 P-N 结区都对光响应有竞争贡献。此外,我们证明我们的两端石墨烯光电探测器可以在透明和柔性衬底上制造,而不需要用于电栅三端器件的复杂制造工艺。这代表了第一个完全透明和灵活的基于石墨烯的 IR 光电探测器的演示,该探测器具有良好的光响应性和高弯曲能力。这种简单的方法应该有助于开发下一代高性能 IR 光电探测器。

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