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A computational study of solvent effects on polymer photovoltaics considering the field dependendent series resistance

机译:考虑磁场依赖串联电阻的聚合物光伏溶剂效应的计算研究

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In order to fabricate high performance polymer solar cells, donor:acceptor mixture must be prepared using a proper solvent. Since solubility of C, as a truly cost effective acceptor, is very limited in common solvents, finding a suitable solvent can enhance the Poly(3-hexylthiophene):C (P3HT:C) based solar cell performance in terms of short circuit current (J), fill factor (FF) and consequently power conversion efficiency (PCE). The formation of C aggregates and P3HT crystallinity depend on the selection of proper solvent. These two factors influence several electrical and optical properties of the cell. In this work, 1,2-Dichlorobenzene (ODCB), the most common solvent, and a mixture of 1-Chloronaphtalene and Chlorobenzene and 1-Methylnaphtalene and Chlorobenzene are chosen as two alternative solvents for preparing P3HT:C films and simulation is performed to understand how these solvents influence the solar cell behavior. The performance of a P3HT:PCBM cell prepared with ODCB is also considered for comparison. A numerical model is employed to simulate the operation of different cells mentioned. In order to model the finite slope of I-V curve in large forward bias, the effect of voltage dependent series resistance is also considered. A minimizing algorithm is employed To determine the estimated values of unknown code input parameters, minimizing the fitting error of simulated and experimental I-V curves. Comparing the numerical model with conventional one shows that traditional models may not be accurate enough for analyzing organic photovoltaics. It is also shown that every 20% increase in G results in about 20% J enhancement; this amount of increase is easily obtained using a proper solvent. Another crucial factor in determining solar cell performance is mobility which considerably depends on the solvent. This work provides experimentalists with an idea of how they should se- ect a solvent as a determinative material in solution-processed based solar cells. The results can also be generalized to find a proper solvent for other active layer materials.
机译:为了制造高性能聚合物太阳能电池,供体:必须使用适当的溶剂制备受体混合物。由于C的溶解度是普通溶剂非常有限,因此在短路电流方面,找到合适的溶剂可以增强基于聚(3-己基噻吩):C(P3HT:C)的太阳能电池性能( j),填充因子(FF)并因此电源转换效率(PCE)。 C聚集体和P3HT结晶度的形成取决于适当溶剂的选择。这两个因素会影响细胞的几个电气和光学性质。在该工作中,选择1,2-二氯苯(ODCB),最常见的溶剂和1-氯苯和氯苯和1-甲基萘烯和氯苯的混合物作为用于制备P3HT的两个替代溶剂:C膜和模拟进行了解这些溶剂如何影响太阳能电池的行为。还考虑了使用ODCB制备的P3HT:PCBM细胞的性能进行比较。使用数值模型来模拟所提到的不同细胞的操作。为了在大正向偏压中模拟I-V曲线的有限斜率,还考虑了电压依赖性串联电阻的效果。采用最小化算法来确定未知代码输入参数的估计值,最小化模拟和实验I-V曲线的拟合误差。将数值模型与传统的数字进行比较,表明传统模型可能不足以分析有机光伏。还表明,G的每20%的增加导致大约20%的J增强;使用适当的溶剂容易获得此增加量。确定太阳能电池性能的另一个关键因素是迁移率,可显着取决于溶剂。这项工作提供了实验主义者,了解它们如何将溶剂作为基于溶液加工的太阳能电池中的确定性材料。结果也可以推广,以找到用于其他有源层材料的适当溶剂。

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