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首页> 外文期刊>IEEE Transactions on Instrumentation and Measurement >Compressive Current Response Mapping of Photovoltaic Devices Using MEMS Mirror Arrays
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Compressive Current Response Mapping of Photovoltaic Devices Using MEMS Mirror Arrays

机译:使用MEMS反射镜阵列的光伏器件的压缩电流响应映射

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Understanding the performance and aging mechanisms in photovoltaic devices requires a spatial assessment of the device properties. The current dominant technique, electroluminescence, has the disadvantage that it assesses radiative recombination only. A complementary method, laser beam-induced current (LBIC), is too slow for high-throughput measurements. This paper presents the description, design, and proof of concept of a new measurement method to significantly accelerate LBIC measurements. The method allows mapping of the current response map of solar cells and modules at drastically reduced acquisition times. This acceleration is achieved by projecting a number of mathematically derived patterns on the sample by using a digital micromirror device (DMD). The spatially resolved signal is then recovered using compressed sensing techniques. The system has fewer moving parts and is demonstrated to require fewer overall measurements. Compared with conventional LBIC imaging using galvanic mirror arrangements or xy scanners, the use of a DMD allows a significantly faster and more repeatable illumination of the device under test. In this proof-of-concept instrument, sampling patterns are drawn from Walsh–Hadamard matrices, which are one of the many operators that can be used to realize this technique. This has the advantage of the signal-to-noise ratio of the measurement being significantly increased and thus allows elimination of the standard lock-in techniques for signal detection, reducing measurement costs, and increasing measurement speed further. This new method has the potential to substantially decrease the time taken for measurement, which demonstrates a dramatic improvement in the utility of LBIC instrumentation.
机译:了解光伏设备的性能和老化机制需要对设备属性进行空间评估。当前的主导技术,电致发光,具有仅评估辐射复合的缺点。激光束感应电流(LBIC)是一种补充方法,对于高通量测量而言太慢了。本文介绍了一种可显着加速LBIC测量的新测量方法的描述,设计和概念验证。该方法允许以大大减少的获取时间来映射太阳能电池和模块的电流响应图。通过使用数字微镜设备(DMD)在样品上投影许多数学上得出的图案,可以实现这种加速。然后使用压缩传感技术恢复空间分辨信号。该系统具有更少的活动部件,并且被证明需要更少的整体测量。与使用电流镜装置或xy扫描仪的传统LBIC成像相比,DMD的使用可以显着更快,更可重复地照射被测设备。在这种概念验证工具中,采样模式是从Walsh–Hadamard矩阵得出的,Walsh–Hadamard矩阵是可用于实现该技术的众多运算符之一。这具有显着提高测量的信噪比的优势,因此可以消除用于信号检测的标准锁定技术,从而降低了测量成本,并进一步提高了测量速度。这种新方法有可能显着减少测量时间,这表明LBIC仪器的实用性得到了显着改善。

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