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具有高内部增益的氧化锌纳米线紫外光探测器。

ZnO nanowire UV photodetectors with high internal gain.

作者信息

Soci C, Zhang A, Xiang B, Dayeh S A, Aplin D P R, Park J, Bao X Y, Lo Y H, Wang D

机构信息

Department of Electrical and Computer Engineering, Jacobs School of Engineering, University of California, San Diego, 9500 Gilman Drive, La Jolla, California 92093-0407, USA.

出版信息

Nano Lett. 2007 Apr;7(4):1003-9. doi: 10.1021/nl070111x. Epub 2007 Mar 15.

Abstract

ZnO nanowire (NW) visible-blind UV photodetectors with internal photoconductive gain as high as G approximately 108 have been fabricated and characterized. The photoconduction mechanism in these devices has been elucidated by means of time-resolved measurements spanning a wide temporal domain, from 10-9 to 102 s, revealing the coexistence of fast (tau approximately 20 ns) and slow (tau approximately 10 s) components of the carrier relaxation dynamics. The extremely high photoconductive gain is attributed to the presence of oxygen-related hole-trap states at the NW surface, which prevents charge-carrier recombination and prolongs the photocarrier lifetime, as evidenced by the sensitivity of the photocurrrent to ambient conditions. Surprisingly, this mechanism appears to be effective even at the shortest time scale investigated of t < 1 ns. Despite the slow relaxation time, the extremely high internal gain of ZnO NW photodetectors results in gain-bandwidth products (GB) higher than approximately 10 GHz. The high gain and low power consumption of NW photodetectors promise a new generation of phototransistors for applications such as sensing, imaging, and intrachip optical interconnects.

摘要

已制备并表征了具有高达约(10^8)的内部光电导增益的氧化锌纳米线(NW)可见光盲紫外光电探测器。通过在从(10^{-9})到(10^2)秒的宽时间域内进行时间分辨测量,阐明了这些器件中的光电导机制,揭示了载流子弛豫动力学中快速((\tau)约为(20)纳秒)和慢速((\tau)约为(10)秒)成分的共存。极高的光电导增益归因于NW表面存在与氧相关的空穴陷阱态,这阻止了电荷载流子复合并延长了光载流子寿命,光电流对环境条件的敏感性证明了这一点。令人惊讶的是,即使在研究的最短时间尺度(t < 1)纳秒时,这种机制似乎也是有效的。尽管弛豫时间较慢,但氧化锌NW光电探测器极高的内部增益导致增益带宽积(GB)高于约(10)吉赫兹。NW光电探测器的高增益和低功耗有望为传感、成像和芯片内光互连等应用带来新一代光电晶体管。

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