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Improvement of the Optoelectronic Properties of Organic Molecules for Nanoelectronics and Solar Cells Applications: via DFT-B3LYP Investigations

机译:改进纳米电子和太阳能电池应用有机分子的光电性能:通过DFT-B3LYP调查

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Background: The organic molecules represent one of the most active classes of compounds, and they have been widely used as active materials for important applications. In this study, the organic molecules and their derivatives with electron withdrawing groups in different positions were investigated to elucidate the influence of substituted groups on electronic and optical properties. Objective: In order to guide the synthesis of novel materials, some new organic compounds are designed as good candidates for nanoelectronics and solar cell applications. Methods: All the calculations are based on the density functional theory (DFT) at the B3LYP/6-31G level through the Gaussian 09W program package. Results: The optimized structures, total energies, electronic states (HOMO and LUMO), energy gaps and the absorption thresholds were performed. This study clarified that the electronic and optical properties are sensitive to the type and position of substituted subgroups. This leads to significant changes in the charge transport and the absorption spectra. The results showed a decrease in energy gaps and the presence of the electron withdrawing groups (such as CClO radical) leads to the absorption threshold in the visible region of the spectrum. Conclusion: The study of structural, electronic and optical properties for these molecules could help to design more efficient functional organic materials, and these properties play a key role in a variety of nanoelectronics and solar cells applications.
机译:背景:有机分子代表最活跃的化合物之一,它们已被广泛用作重要应用的活性材料。在该研究中,研究了有机分子及其具有不同位置的吸电子基团的衍生物,以阐明取代基对电子和光学性质的影响。目的:为了引导新材料的合成,一些新的有机化合物设计为纳米电子和太阳能电池应用的良好候选者。方法:通过高斯09W程序包,所有计算基于B3LYP / 6-31G级别的密度泛函理论(DFT)。结果:进行了优化的结构,总能量,电子状态(HOMO和LUMO),能量差距和吸收阈值。本研究阐明了电子和光学性质对替代亚组的类型和位置敏感。这导致电荷传输和吸收光谱的显着变化。结果表明,能量间隙的降低以及电子取出基团(例如CCLO自由基)的存在导致光谱的可见区域中的吸收阈值。结论:对这些分子的结构,电子和光学性质的研究可以有助于设计更有效的功能性有机材料,这些特性在各种纳米电子和太阳能电池应用中起着关键作用。

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