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用于从可见光到红外波段的高响应度和超快光电探测的金斑石墨烯纳米带

Gold-patched graphene nano-stripes for high-responsivity and ultrafast photodetection from the visible to infrared regime.

作者信息

Cakmakyapan Semih, Lu Ping Keng, Navabi Aryan, Jarrahi Mona

机构信息

Electrical Engineering Department, University of California Los Angeles, Los Angeles, CA 90095 USA.

出版信息

Light Sci Appl. 2018 Jun 20;7:20. doi: 10.1038/s41377-018-0020-2. eCollection 2018.

Abstract

Graphene is a very attractive material for broadband photodetection in hyperspectral imaging and sensing systems. However, its potential use has been hindered by tradeoffs between the responsivity, bandwidth, and operation speed of existing graphene photodetectors. Here, we present engineered photoconductive nanostructures based on gold-patched graphene nano-stripes, which enable simultaneous broadband and ultrafast photodetection with high responsivity. These nanostructures merge the advantages of broadband optical absorption, ultrafast photocarrier transport, and carrier multiplication within graphene nano-stripes with the ultrafast transport of photocarriers to gold patches before recombination. Through this approach, high-responsivity operation is realized without the use of bandwidth-limiting and speed-limiting quantum dots, defect states, or tunneling barriers. We demonstrate high-responsivity photodetection from the visible to infrared regime (0.6 A/W at 0.8 μm and 11.5 A/W at 20 μm), with operation speeds exceeding 50 GHz. Our results demonstrate improvement of the response times by more than seven orders of magnitude and an increase in bandwidths of one order of magnitude compared to those of higher-responsivity graphene photodetectors based on quantum dots and tunneling barriers.

摘要

石墨烯是一种在高光谱成像和传感系统中用于宽带光探测的极具吸引力的材料。然而,现有石墨烯光电探测器的响应度、带宽和运行速度之间的权衡阻碍了其潜在应用。在此,我们展示了基于金贴片石墨烯纳米带的工程光导纳米结构,它能够实现具有高响应度的同时宽带和超快光探测。这些纳米结构将宽带光吸收、超快光载流子传输以及石墨烯纳米带内的载流子倍增的优势与光载流子在复合前超快传输到金贴片的优势相结合。通过这种方法,无需使用限制带宽和速度的量子点、缺陷态或隧穿势垒就能实现高响应度运行。我们展示了从可见光到红外波段(在0.8μm处为0.6 A/W,在20μm处为11.5 A/W)的高响应度光探测,运行速度超过50 GHz。我们的结果表明,与基于量子点和隧穿势垒的高响应度石墨烯光电探测器相比,响应时间提高了七个多数量级,带宽增加了一个数量级。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f09/6107021/b4869e083cf7/41377_2018_20_Fig1_HTML.jpg

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