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A Combined Semiempirical-DFT Study of Oligomers Within the Finite-Chain Approximation, Evolution from Oligomers to Polymers

机译:有限链近似中低聚物的组合半经验-DFT研究,从低聚物到聚合物的演变

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摘要

A computationally cheap approach combining time-independent density functional theory (TIDFT) and semiempirical methods with an appropriate extrapolation procedure is proposed to accurately estimate geometrical and electronic properties of conjugated polymers using just a small set of oligomers. The highest occupied molecular orbital-lowest unoccupied molecular orbital gap (HLG) obtained at a TIDFT level (B3PW91) for two polymers, trans-polyacetylene -the simplest conjugated polymer, and a much larger poly(2-methoxy-5-(2,9-ethyl-hexyloxy)-1,4-phenylenevinylene (MEH-PPV) polymer converge to virtually the same asymptotic value than the excitation energy obtained with time-dependent DFT (TDDFT) calculations using the same functional. For TIDFT geometries, the HLG is found to converge to a value within the experimentally accepted range for the band gap of these polymers, when an exponential extrapolation is used; however if semiempirical geometries are used, a linear fit of the HLG versus 1 is found to produce the best results. Geometrical parameters are observed to reach a saturation value in good agreement with experimental information, within the length of oligomers calculated here and no extrapolation was considered necessary. Finally, the performance of three different semiempirical methods (AMI, PM3, and MNDO) and for the TIDFT calculations, the performance of 7 different full electron basis sets (6-311 +G**, 6-31++G**, 6-311++G**, 6-31+G**, 6-31G**, 6-31+G*, and 6-31G) is compared and it is determined that the choice of semiempirical method or the basis set does not significantly affect the results.
机译:提出了一种计算便宜的方法,该方法将时间无关的密度泛函理论(TIDFT)和半经验方法与适当的外推程序相结合,以仅使用少量的低聚物即可准确估算共轭聚合物的几何和电子性质。在TIDFT水平(B3PW91)下,两种聚合物,反式聚乙炔-最简单的共轭聚合物和大得多的聚(2-甲氧基-5-(2, 9-乙基-己氧基)-1,4-亚苯基亚乙烯基(MEH-PPV)聚合物收敛到与使用相同功能的时变DFT(TDDFT)计算得到的激发能几乎相同的渐近值。当使用指数外推法时,可发现这些聚合物的带隙收敛到实验可接受范围内的值;但是,如果使用半经验几何形状,则发现HLG与1 / n的线性拟合可产生最佳的结果,在此处计算的低聚物长度范围内,观察到的几何参数达到了与实验信息高度吻合的饱和值,并且无需进行外推,最后,得出了三种不同半成品的性能经验方法(AMI,PM3和MNDO)以及TIDFT计算中,有7种不同的全电子基集(6-311 + G **,6-31 ++ G **,6-311 ++ G * (*,6-31 + G **,6-31G **,6-31 + G *和6-31G)进行比较,确定半经验方法或基集的选择不会显着影响结果。

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