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Theoretical Study on the Photoelectric Properties of a Class of Copolymers Based on Benzodithiophene for Solar Cells

机译:一类基于苯并二噻吩的太阳能电池共聚物光电性能的理论研究

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摘要

The structural, electronic, and optical properties of PBDTTBT are comprehensively studied by density functional theory to rationalize the experimentally observed properties. Periodic boundary conditions method is employed to simulate the polymer block and calculate effective charge mass from the band structure calculation to describe charge transport properties. Moreover, both time-dependent density functional theory and a set of multidimensional visualization techniques are used to characterize the exciton dissociation ability in the PCBM PBDTTBT interface. These theoretical methods and calculation techniques not only promote deep understanding of the connection between chemical structures and optical and electronic properties of the donor-acceptor system but also can be used to rationally design a novel donor-acceptor system. Based on the same calculated methods as PBDTTBT, four copolymers PBDTTTP, PBDTTTO, PBDTTTPD, and PBDTTFPD are designed to study their potentials as donors in polymer BHJ. The results indicate that PBDTTBT’s well conjugation benefits its good stability, and its wide and strong absorption spectra in the range of visible light, appropriate FMO levels, well charge transport, and favorable exciton dissociation lead to its photovoltaic performance. Furthermore, through comparing the four designed polymers with PBDTTBT, we conclude that the four designed polymers have stronger exciton dissociation ability and larger open-circuit voltage and external quantum efficiencies. Consequently, the four designed copolymers are promising candidates for polymer BHJ solar cells.
机译:通过密度泛函理论全面研究了PBDTTBT的结构,电子和光学性质,以合理化实验观察到的性质。采用周期性边界条件法模拟聚合物嵌段,并根据能带结构计算得出有效电荷质量,以描述电荷传输性质。此外,基于时间的密度泛函理论和一组多维可视化技术均用于表征PCBM PBDTTBT界面中的激子离解能力。这些理论方法和计算技术不仅增进了对供体-受体系统化学结构与光学和电子性质之间联系的深刻理解,而且可用于合理设计新型供体-受体系统。基于与PBDTTBT相同的计算方法,设计了四种共聚物PBDTTTP,PBDTTTO,PBDTTTPD和PBDTTFPD,以研究它们作为聚合物BHJ供体的潜力。结果表明,PBDTTBT的良好共轭作用具有良好的稳定性,并且在可见光范围,适当的FMO含量,良好的电荷传输和良好的激子离解范围内具有宽而强的吸收光谱,从而具有良好的光伏性能。此外,通过将四种设计的聚合物与PBDTTBT进行比较,我们得出结论,四种设计的聚合物具有更强的激子解离能力,更大的开路电压和外部量子效率。因此,四种设计的共聚物有望成为聚合物BHJ太阳能电池的候选材料。

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