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石墨烯栅控石墨烯-硒化镓异质结器件的光响应

Photoresponse of Graphene-Gated Graphene-GaSe Heterojunction Devices.

作者信息

Kim Wonjae, Arpiainen Sanna, Xue Hui, Soikkeli Miika, Qi Mei, Sun Zhipei, Lipsanen Harri, Chaves Ferney A, Jiménez David, Prunnila Mika

机构信息

VTT Technical Research Center of Finland Ltd., P.O. Box 1000, FI-02044 VTT, Finland.

Department of Electronics and Nanoengineering, Aalto University, Tietotie 3, Espoo 02150, Finland.

出版信息

ACS Appl Nano Mater. 2018 Aug 24;1(8):3895-3902. doi: 10.1021/acsanm.8b00684. Epub 2018 Jul 31.

Abstract

Because of their extraordinary physical properties, low-dimensional materials including graphene and gallium selenide (GaSe) are promising for future electronic and optoelectronic applications, particularly in transparent-flexible photodetectors. Currently, the photodetectors working at the near-infrared spectral range are highly indispensable in optical communications. However, the current photodetector architectures are typically complex, and it is normally difficult to control the architecture parameters. Here, we report graphene-GaSe heterojunction-based field-effect transistors with broadband photodetection from 730-1550 nm. Chemical-vapor-deposited graphene was employed as transparent gate and contact electrodes with tunable resistance, which enables effective photocurrent generation in the heterojunctions. The photoresponsivity was shown from 10 to 0.05 mA/W in the near-infrared region under the gate control. To understand behavior of the transistor, we analyzed the results via simulation performed using a model for the gate-tunable graphene-semiconductor heterojunction where possible Fermi level pinning effect is considered.

摘要

由于其非凡的物理特性,包括石墨烯和硒化镓(GaSe)在内的低维材料在未来电子和光电子应用中具有广阔前景,特别是在透明柔性光电探测器方面。目前,工作在近红外光谱范围的光电探测器在光通信中是非常不可或缺的。然而,当前的光电探测器架构通常很复杂,而且通常难以控制架构参数。在此,我们报道了基于石墨烯-GaSe异质结的场效应晶体管,其具有730 - 1550 nm的宽带光探测能力。化学气相沉积的石墨烯被用作具有可调电阻的透明栅极和接触电极,这使得在异质结中能够有效产生光电流。在栅极控制下,近红外区域的光响应度在10至0.05 mA/W之间。为了理解晶体管的行为,我们通过使用考虑了可能的费米能级钉扎效应的栅极可调石墨烯-半导体异质结模型进行模拟来分析结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f244/6150651/536480fbd444/an-2018-00684t_0001.jpg

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