首页> 外文期刊>Der Pharma Chemica: journal for medicinal chemistry, pharmaceutical chemistry and computational chemistry >DFT and TDDFT investigations of new thienopyrazine-based dyes for solar cells: Effects of electron donor groups
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DFT and TDDFT investigations of new thienopyrazine-based dyes for solar cells: Effects of electron donor groups

机译:新型噻吩并吡嗪类太阳能电池染料的DFT和TDDFT研究:电子供体基团的影响

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摘要

Novel five organic donor-p-acceptor molecules (D-p-A) used for dye sensitized solar cells (DSSCs) and for organic solar cells (OSC), based on thienopyrazine and thiophene were studied by density functional theory (DFT) and timedependent DFT (TD-DFT) approaches to shed light on how the p-conjugation order influence the performance of the solar cells. The electron acceptor (anchoring) group was 2-cyanoacrylic for all compounds whereas the electron donor unit was varied and the influence was investigated. The theoretical results have shown that TD-DFT calculations, with a hybrid exchange–correlation functional using the Coulomb-attenuating method (CAM-B3LYP) in conjunction with polarizable continuum model of solvation (PCM) together with a 6-31G (d,p) basis set, was reasonably capable of predicting the excitation energies, the absorption and the emission spectra of the molecules. The frontier molecular orbitals (HOMO and LUMO) energy levels of these compounds can be ensuring positive effect on the process of electron injection and regeneration. The trend of the calculated HOMO-LUMO gaps nicely compares with the spectral data. In addition, the estimated values of open-circuit photovoltage (Voc) for these compounds were presented in two cases /TiO2 and /PCBM. The study of structural, electronics and optical properties for these compounds could help to design more efficient functional photovoltaic organic materials.
机译:通过密度泛函理论(DFT)和时变DFT(TD-)研究了基于噻吩并吡嗪和噻吩的用于染料敏化太阳能电池(DSSC)和有机太阳能电池(OSC)的五个新的有机供体p受体分子(DpA)。 DFT)的方法揭示了p共轭顺序如何影响太阳能电池的性能。对于所有化合物,电子受体(锚固)基团为2-氰基丙烯酸,而电子给体单元变化,并研究了其影响。理论结果表明,TD-DFT计算具有库仑衰减方法(CAM-B3LYP)的混合交换相关函数,结合了极化的溶剂化连续介质模型(PCM)和6-31G(d,p )基础集,能够合理地预测分子的激发能,吸收和发射光谱。这些化合物的前沿分子轨道(HOMO和LUMO)能级可确保对电子注入和再生过程产生积极影响。计算出的HOMO-LUMO间隙的趋势可以很好地与光谱数据进行比较。此外,在两种情况/ TiO2和/ PCBM中给出了这些化合物的开路光电压(Voc)的估计值。对这些化合物的结构,电子和光学性质的研究可以帮助设计更有效的功能性光伏有机材料。

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