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ZnO based homojunction p-i-n solar cell to self-power UV detector

机译:基于ZnO的同质结p-i-n太阳能电池到自供电紫外线探测器

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A simple novel and low cost efficient all ZnO based homojunction p-i-n solar cell without any top transparent conductive oxide layer and aback reflector layer are numerically modeled using 2D device simulation tool ATLAS. Optimization of the different layers, doping level and power conversion efficiency of the model has been done. The spectral response such as transmissivity, reflectance, and absorptance under AM1.5 solar illumination is well studied. Although the ZnO material responds to only a small portion of sunlight in UV region of AM1.5, the External Quantum efficiency(EQE) of the model is found to be nearly 70% and efficiency upto 16% for 1000nm thick i-layer ZnO. These optimized results are validated with other reported published experimental works. The wavelength dependent photo response properties of the homojunction are investigated in detail by studying the effect of light illumination on current-voltage (I-V) characteristics, photocurrent and spectral response at room temperature. From the photocurrent spectra, it is observed that the ultraviolet (UV)photons are absorbed in the depleted n-ZnO under positive bias conditions with responsivity of 1.6 mA/V. This indicates that such a model of ZnO p-i-n thin film homojunction can be used to sense UV though the photo response for UV as well as generate a significant energy to self-power this sensor.
机译:使用2D器件仿真工具ATLAS对没有任何顶部透明导电氧化物层和背面反射层的简单新颖且低成本高效的全ZnO基同质结p-i-n太阳能电池进行了数值建模。已经完成了模型的不同层,掺杂水平和功率转换效率的优化。很好地研究了AM1.5日光下的光谱响应,如透射率,反射率和吸收率。尽管ZnO材料仅对AM1.5的紫外线区域中的一小部分阳光做出响应,但对于1000nm厚的i层,该模型的外部量子效率(EQE)接近70%,效率高达16%。氧化锌这些优化的结果已通过其他已发表的实验报告进行了验证。通过研究光照对室温下电流-电压(I-V)特性,光电流和光谱响应的影响,详细研究了同质结的与波长有关的光响应特性。从光电流光谱中观察到,在正偏压条件下,响应性为1.6 mA / V的紫外(UV)光子在耗尽的n-ZnO中被吸收。这表明这种ZnO p-i-n薄膜同质结模型可用于检测UV(尽管对UV的光响应),并产生大量能量自供电给该传感器。

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