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Lightwave trapping in thin film solar cells with improved photonic-structured front contacts

机译:薄膜太阳能电池的光波捕获,具有改进的光子结构的前触点

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Photonic microstructures placed at the topside of photovoltaic cells are currently one of the preferred light management solutions to obtain efficiency enhancement due to the increment of the optical absorption produced in the active medium of the devices. Herein, we present the results concerning a practical, low-cost and scalable approach to integrate metal-oxide based light trapping microstructures on the front contact of amorphous silicon thin film solar cells. A colloidal lithography method was used to pattern the wavelength-sized pyramidal-like features composing the structures, made of two different transparent materials, TiO2 and IZO, allowing the detailed study of the influence of their geometrical parameters on the optoelectronic properties of the devices. These top coating structures are deposited as a post-process after the solar cell fabrication, thus facilitating and broadening their industrial applicability. Measurements of the light absorption, external quantum efficiency and I-V curves revealed that the structured coatings provide strong broadband improvements in the generated current, due to the suppression of reflected light at short wavelengths and the increment of the optical path length of the longer wavelengths (via light scattering), within the amorphous silicon layer. As a result, in the four types of structures analyzed in this study, remarkable increments were achieved in the cells' efficiencies (up to 14.4%) and generated currents (up to 21.5%), with respect to the flat reference cells.
机译:放置在光伏电池顶部的光子微结构是目前,由于在器件的活性介质中产生的光学吸收的增量,获得效率增强的优选光管理解决方案之一。在此,我们介绍了具有实用,低成本和可扩展方法的结果,以将基于金属氧化物的光捕获微观结构集成在非晶硅薄膜太阳能电池的前触点上。胶体光刻方法用于绘制构成两个不同透明材料,TiO2和IZO制成的结构的波长型锥形样特征,允许详细研究其几何参数对器件的光电性能的影响。在太阳能电池制造之后,将这些顶部涂层结构作为后工艺沉积,从而促进并扩大其工业实用性。光吸收的测量,外部量子效率和IV曲线揭示了结构化涂层由于短波长的反射光的抑制和较长波长的光路长度的增量而提供强烈的宽带改善,并且由于较长波长的光路长度的增量(通过光散射),在非晶硅层内。结果,在本研究中分析的四种类型的结构中,在细胞的效率(高达14.4%)和产生的电流(高达21.5%)相对于扁平参考细胞来实现显着增量。

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