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Nanostructure based EO/IR sensor development for homeland security applications

机译:基于纳米结构的EO / IR传感器开发,用于国土安全应用

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Next Generation EO/IR focal plane arrays using nanostructure materials are being developed for a variety of Defense and Homeland Security Sensor Applications. Several different nanomaterials are being evaluated for these applications. These include ZnO nanowires, GaN Nanowires and II-VI nanowires, which have demonstrated large signal to noise ratio as a wide band gap nanostructure material in the UV band. Similarly, the work is under way using Carbon Nanotubes (CNT) for a high speed detector and focal plane array as two-dimensional array as bolometer for IR bands of interest, which can be implemented for the sensors for homeland security applications. In this paper, we will discuss the sensor design and model predicting performance of an EO/IR focal plane array and Sensor that can cover the UV to IR bands of interest. The model can provide a robust means for comparing performance of the EO/IR FPA's and Sensors that can operate in the UV, Visible-NIR (0.4- 1.8μ), SWIR (2.0-2.5μ), MWIR (3-5μ), and LWIR bands (8-14μ). This model can be used as a tool for predicting performance of nanostructure arrays under development. We will also discuss our results on growth and characterization of ZnO nanowires and CNT's for the next generation sensor applications. We also present several approaches for integrated energy harvesting using nanostructure based solar cells and Nanogenerators that can be used to supplement the energy required for nanostructure based sensors.
机译:使用纳米结构材料的下一代EO / IR焦平面阵列正在为各种国防和国土安全传感器应用开发。正在针对这些应用评估几种不同的纳米材料。其中包括ZnO纳米线,GaN纳米线和II-VI纳米线,它们已证明具有大的信噪比,可作为UV波段中的宽带隙纳米结构材料。同样,正在进行的工作是将碳纳米管(CNT)用于高速检测器,并将焦平面阵列作为二维阵列,作为用于感兴趣的IR波段的辐射热测量计,可以将其用于国土安全应用的传感器。在本文中,我们将讨论EO / IR焦平面阵列和可覆盖感兴趣的UV到IR波段的Sensor的传感器设计和模型预测性能。该模型可为比较EO / IR FPA和可在UV,Visible-NIR(0.4-1.8μ),SWIR(2.0-2.5μ),MWIR(3-5μ),和LWIR波段(8-14μ)。该模型可以用作预测正在开发的纳米结构阵列性能的工具。我们还将讨论用于下一代传感器应用的ZnO纳米线和CNT的生长和表征的结果。我们还介绍了几种使用基于纳米结构的太阳能电池和纳米发电机进行综合能量收集的方法,这些方法可用于补充基于纳米结构的传感器所需的能量。

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