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Enhancing the energy conversion efficiency of low mobility solar cells by a 3D device architecture

机译:通过3D设备架构提高低移动性太阳能电池的能量转换效率

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摘要

Solar cells based on semiconductor materials with low diffusion lengths like organics and amorphous silicon exhibit short circuit currents and energy conversion efficiencies distinctly below the detailed balance limit (commonly called the Shockley Queisser limit). The short circuit current and energy conversion efficiency of such solar cells can be increased by employing a 3D device architecture. The 3D device architecture leads to a distinct gain in the optical thickness of such solar cells compared to a conventional planar solar cell, while the electrical thickness of the investigated 3D and planar solar cells is equal. Hence a short circuit current can be achieved close to the theoretical upper limit. In this study, a 3D organic solar cell is studied. The influence of the 3D architecture on the solar cell performance parameters of a small molecule organic solar cell was investigated. Finite-difference time-domain optical simulations are utilized to determine the quantum efficiency and short circuit current of the 3D solar cell structure. A guideline is provided on how to achieve a high energy conversion efficiency with a 3D solar cell. The proposed approach is not only applicable to organic solar cells. The approach is applicable to all solar energy materials with low diffusion length and/or low charge carrier mobility.
机译:基于具有低扩散长度的半导体材料的太阳能电池如有机物和非晶硅,表现出短路电流和能量转换效率明显低于详细的平衡限制(通常称为Shockley队列限量)。通过采用3D设备架构可以增加这种太阳能电池的短路电流和能量转换效率。与传统的平面太阳能电池相比,3D器件架构导致这种太阳能电池的光学厚度的不同增益,而研究的3D和平面太阳能电池的电厚度相等。因此,可以靠近理论上限制实现短路电流。在这项研究中,研究了3D有机太阳能电池。研究了三维架构对小分子有机太阳能电池太阳能电池性能参数的影响。有限差分时域光学模拟用于确定3D太阳能电池结构的量子效率和短路电流。关于如何利用3D太阳能电池实现高能量转换效率的指南。所提出的方法不仅适用于有机太阳能电池。该方法适用于具有低扩散长度和/或低电荷载流动性的太阳能材料。

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