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Orthogonal Thin Film Photovoltaics on Vertical Nanostructures

机译:垂直纳米结构上的正交薄膜光伏

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摘要

Decoupling paths of carrier collection and illumination within photovoltaic devices is one promising approach for improving their efficiency by simultaneously increasing light absorption and carrier collection efficiency. Orthogonal photovoltaic devices are core-shell type structures consisting of thin film photovoltaic stack on vertical nanopillar scaffolds. These types of devices allow charge collection to take place in the radial direction, perpendicular to the path of light in the vertical direction. This approach addresses the inherently high recombination rate of disordered thin films, by allowing semiconductor films with minimal thicknesses to be used in photovoltaic devices, without performance degradation associated with incomplete light absorption. This work considers effects which influence the performance of orthogonal photovoltaic devices. Illumination non-uniformity as light travels across the depth of the pillars, electric field enhancement due to the nanoscale size and shape of the pillars, and series resistance due to the additional surface structure created through the use of pillars are considered. All of these effects influence the operation of orthogonal solar cells and should be considered in the design of vertically nanostructured orthogonal photovoltaics.
机译:光伏器件内载流子收集和照明的去耦路径是一种有前途的方法,可通过同时提高光吸收和载流子收集效率来提高其效率。正交光伏器件是核-壳型结构,由垂直纳米柱支架上的薄膜光伏堆叠组成。这些类型的设备允许电荷收集在垂直于垂直方向上的光路的径向上进行。该方法通过允许将具有最小厚度的半导体膜用于光伏器件,而不会因不完全的​​光吸收而导致性能下降,从而解决了无序薄膜固有的高复合率。这项工作考虑了影响正交光伏器件性能的影响。考虑到光穿过柱的深度时照明的不均匀性,由于柱的纳米级尺寸和形状导致的电场增强以及由于使用柱产生的附加表面结构导致的串联电阻。所有这些效应都会影响正交太阳能电池的运行,因此应在垂直纳米结构的正交光伏电池的设计中加以考虑。

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