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Photovoltaic investigation of CPDT based small molecule for BHJ OSC devices

机译:基于CPDT基于CPDT的BHJ OSC器件的光伏研究

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In recent years, Bulk heterojunction organic solar cells (BHJ OSCs) based small molecules take leading position of industrialization for their considerable opto-electronic properties and uncomplicated fabrication process. Materials based on cyclopentadithiophene (CPDT) have been widely used thanks to their interesting structural and electronic characteristics. Here we report a combined experimental and theoretical investigation of a CPDT-based material namely 6,6′-(2,5-bis (hexyloxy)-1,4-phenylene) bis(2-methyl −4H- cyclopenta [2,1-b:3,4-b'] dithiophen-4-one) (CPDT-alt-BHP) as donor small molecule in a BHJ OSC. The synthesized molecule shows a rigid and planar structure with small band gap energy. The electronic properties have been investigated by means of Density Functional Theory (DFT) at B3LYP/6-31g(d) level of theory. The studied molecule displayed an optical absorption in the visible region with $lambda_ext{max}=404$ nm. Transition density matrix (TDM) plot was carried out to get insight into the hole-electron coherences at the first excited state. The photovoltaic parameters of CPDTBHP:[70]PCBM system were simulated using wxAMPS software. The designed BHJ OSC exhibited respectable fill factor (FF) of 81.13%, short-circuit current density (Jsc) of 6.089 mA cm-2 and power conversion efficiency (PCE) of 4.922%. The studied compound offers significant structural and optoelectronic properties that could be enhanced via judicious molecular tuning.
机译:近年来,批量异质结有机太阳能电池(BHJ OSC)的小分子采用其相当大的光电性能和简单的制造过程的产业化领先地位。由于其有趣的结构和电子特性,基于环戊二噻吩(CPDT)的材料已被广泛使用。在这里,我们报告了对基于CPDT的材料的组合实验和理论研究,即6,6' - (2,5-双(己氧基)-1,4-苯基)双(2-甲基-4H-环戊类[2,1] -b:3,4-b']二硫硒-4-一)(CPDT-ALT-BHP)作为BHJ OSC中的供体小分子。合成的分子显示了具有小带隙能量的刚性和平面结构。通过B3LYP / 6-31G(D)理论水平的密度泛函理论(DFT)研究了电子特性。研究的分子在可见区域中显示了光学吸收 $ lambda _ text {max} = 404 $ nm。进行过渡密度矩阵(TDM)曲线,以使第一激发态的孔电子相干洞察。 CPDTBHP的光伏参数:使用Wxamps软件模拟PCBM系统。所设计的BHJ OSC表现出可观的填充因子(FF)81.13%,短路电流密度(JSC)为6.089 mA CM-2和电源转换效率(PCE)为4.922%。学习的化合物提供了显着的结构和光电性能,可以通过明智分子调谐来增强。

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