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ZnMgO solar blind detectors: from material to systems

机译:Znmgo太阳盲探测器:从材料到系统

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Zinc oxide (ZnO) is a unique wide bandgap biocompatible material system exhibiting both semiconducting and piezoelectric properties that has a diverse group of growth morphologies. Bulk ZnO has a bandgap of 3.37 eV that corresponds to emissions in the ultraviolet (UV) spectral band. Highly ordered vertical arrays of ZnO nanowires (NWs) have been grown on substrates including silicon, SiO_2, GaN, and sapphire using a metal organic chemical vapor deposition (MOCVD) growth process. The structural and optical properties of the grown vertically aligned ZnO NW arrays were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and photoluminescence (PL) measurements. Compared to conventional UV sensors, detectors based on ZnO NWs offer high UV sensitivity and low visible sensitivity, and are expected to exhibit low noise, high quantum efficiency, extended lifetimes, and have low power requirements. The photoresponse switching properties of NW array based sensing devices have been measured with intermittent exposure to UV radiation, where the devices were found to switch between low and high conductivity states at time intervals on the order of a few seconds. Envisioned applications for such sensors/FPAs potentially include threat detection and threat warning.
机译:氧化锌(ZnO)是一种独特的宽带隙生物相容性材料系统,其具有多种生长形态组的半导体和压电性能。 Bulk ZnO具有3.37eV的带隙,与紫外(UV)光谱带中的排放相对应。使用金属有机化学气相沉积(MOCVD)生长过程,在包括硅,SiO_2,GaN和蓝宝石的基板上生长在ZnO纳米线(NWS)的高度有序的垂直阵列。通过扫描电子显微镜(SEM),X射线衍射(XRD)和光致发光(PL)测量,表征生长的垂直对准ZnO NW阵列的结构和光学性质。与传统的UV传感器相比,基于ZnO NWS的探测器提供高UV灵敏度和低可见灵敏度,并且预计将表现出低噪声,高量子效率,延长的寿命,并且功率要求低。基于NW阵列的感测装置的光响应切换性能已经通过间歇暴露于UV辐射来测量,其中,发现设备在几秒钟的时间间隔以时间间隔切换在低电平和高导电状态之间。所设想的这种传感器/ FPA的应用程序可能包括威胁检测和威胁警告。

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