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Application of artificial neural network for accelerated optimization of ultra thin organic solar cells

机译:人工神经网络在超薄有机太阳能电池加速优化中的应用

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In this study, we show that design optimization of solar cells can be accelerated using neural networks (NN) effectively. We consider an organic thin film solar cell consisting of a poly(3-hexylthiophene):(6,6)-phenyl-C61-butyric-acid-methyl ester (P3HT:PCBM) absorber, an antireflective indium tin oxide (ITO) layer and an aluminum back reflector layer. Zinc oxide (ZnO) and molybdenum trioxide (MoO3) interlayers are also used as electron and hole transfer layers. Silver nanotextures are embedded within absorber layer to create near field effects thus enhancing optical absorption. Optical properties of structures at sub-wavelength scales are measured by numerically solving first principle electromagnetic equations, e.g., by means of finite difference time domain and finite element methods. These methods are time-consuming, and therefore limit the possibility of exhaustive optimization. Surrogate modeling can be used to overcome this challenge. In the present work, we design a two layer NN surrogate model to estimate the optical absorptivity of the cell for any given geometry vector as well as any radiation wavelength. After the preliminary optimization which utilizes NN, the result of optimization is obtained within narrowed optimization bounds obtained from the results of surrogate based optimization. A 325% of enhancement in absorption is obtained as a result of optimization.
机译:在这项研究中,我们表明可以使用神经网络(NN)有效地加速太阳能电池的设计优化。我们考虑一种有机薄膜太阳能电池,它由聚(3-己基噻吩):( 6,6)-苯基-C61-丁酸甲酯(P3HT:PCBM)吸收剂,抗反射铟锡氧化物(ITO)层组成铝背反射层。氧化锌(ZnO)和三氧化钼(MoO3)中间层也用作电子和空穴传输层。银纳米纹理嵌入吸收层内以产生近场效应,从而增强光吸收。通过数值求解第一原理电磁方程,例如借助于有限差分时域和有限元方法,测量亚波长尺度上的结构的光学特性。这些方法很耗时,因此限制了穷举优化的可能性。代理建模可以用来克服这一挑战。在目前的工作中,我们设计了一个两层的NN替代模型,以估计任何给定几何矢量以及任何辐射波长下细胞的光吸收率。在利用NN进行初步优化之后,可以从基于替代的优化结果获得的狭窄优化范围内获得优化结果。优化的结果是吸收率提高了325%。

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