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Design of a novel series of small molecule donors for application in organic solar cells

机译:在有机太阳能电池中应用新型小型分子供体系列的设计

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摘要

In an effort to study high-efficient electron donor materials for application in organic solar cells (OSC), density functional theory (DFT) calculations were performed to predict a variety of small molecules (SMs) with terminal acceptor-n bridge-central donor-n bridge-terminal acceptor (A-pi-D-pi-A) framework. An interesting A-pi-D-pi-Atype SM containing phenothiazine as D unit has been recently synthesized and applied to in the OSC. Motivated by this study, here, we have systematically predicted 10 SM donor materials based on the phenothiazine as the central D unit as well as several A and pi units that have been used into materials representing excellent SC as well as charge transport characteristics. Then, the structural, electronic, and optical properties of the predicted SM donors have been investigated. The fundamental band gap energies, orbital spatial distributions, and intrinsic dipole moments were calculated using DFT while the optical band gap energies were obtained using time-dependent density functional theory (TD-DFT). Several SC properties of the predicted SMs were then computed and compared with the available experimental results of OSCs. Our suggested SMs represented the enhancement in the open circuit voltage (V-OC) and charge transport properties which may lead to OSCs with improved power conversion efficiency (PCE) compared to the previously synthesized SMs. Moreover, small reorganization energies, large transfer integrals, and high intra-molecular coupling obtained from dense pi-stacking give rise to increased electron mobility in the predicted SMs. However, this strategy can be helpful for further improving the performance of SMs in OSCs.
机译:在努力研究高效的电子给体材料用于在有机太阳能电池(OSC)中的应用,进行密度泛函理论(DFT)计算以预测各种小分子(SMS)与终端接受者-N桥中央供体 - n桥接终端接受器(A-PI-D-PI-A)框架。最近已经合成了含有吩噻嗪作为D单元的有趣A-PI-D-PI-ATYPE SM并在OSC中施加到OSC中。在这里,通过本研究,我们通过基于吩噻嗪作为中央D单元以及已经用于代表优异SC的材料以及电荷传输特性的几种A和PI单元来系统地预测了10个SM供体材料。然后,已经研究了预测的SM供体的结构,电子和光学性质。使用DFT使用DFT计算光学带隙能量,轨道空间分布和固有偶极偶像,而使用时间依赖的密度泛函理论(TD-DFT)获得光带隙能量。然后计算预测SMS的几个SC属性并与OSC的可用实验结果进行了比较。我们建议的SMS表示与先前合成的SMS相比,可以导致具有改善的电源转换效率(PCE)的OSC的开路电压(V-OC)和电荷传输性能的增强。此外,小重组能量,大的转移积分和从致密的PI堆叠获得的高帧内分子偶联产生了预测的SMS中的电子迁移率。但是,这种策略可以有助于进一步提高SOSCS中SMS的性能。

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