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Molecular Modelling of Selected Combustion By-Products from the Thermal Degradation of Croton megalocarpus Biodiesel

机译:巴豆大生物生物柴油热降解选择的燃烧副产物的分子模型

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Computational models are very important in understanding the nature of interactions in chemical systems from which important geometry parameters for various organic compounds can be extracted. This study explores computationally the geometry parameters of selected volatile organic compounds from the co-pyrolysis of Croton megalocarpus biodiesel blend using the Density functional theory (DFT) in conjunction with B3LYP correlation function at 6 - 31 G basis set. Gaussian ‘16 computational and Chemissian version 4.43 computational codes were used to generate electron density maps, band gap energies and frontier molecular orbitals. Frontier orbitals are central in estimating the reactive nature of a given molecular compound. The results indicated that the thermal degradation of selected molecular products from the co-pyrolysis of Croton megalocarpus biodiesel blends proceeds via high energy barriers between 400 and -1250 kJ/mol. Fundamentally the highest occupied and the lowest occupied molecular orbitals (MOs) are critical in determining the reactivity of a molecule. Moreover, the HOMO-LUMO band gap energies of 4-(2,4-dimethylcyclohexyl)-2-butanone, 3,4-dimethyl-3-cyclohexene-1-carbaldehyde, 5-(3-phenylpropanoyl)dihydro-2(3H)-furanone, and isopropenyl-4-methyl-1,2-cyclohexanediol were 0.674 eV, 3.918 eV, 3.393 eV, and 1.588 eV, respectively.
机译:计算模型对于理解化学系统中相互作用的性质非常重要,从中可以提取出各种有机化合物的重要几何参数。这项研究使用密度泛函理论(DFT)结合B3LYP相关函数在6-31 G基础集上,对巴豆大生物生物柴油共混物的热解进行了计算,研究了所选挥发性有机化合物的几何参数。高斯'16计算和Chemissian版本4.43计算代码用于生成电子密度图,带隙能量和前沿分子轨道。边界轨道是估计给定分子化合物的反应性的关键。结果表明,来自巴豆大生物生物柴油混合物共热解的选定分子产物的热降解通过400至-1250 kJ / mol的高能垒进行。从根本上说,最高占据和最低占据的分子轨道(MOs)对确定分子的反应性至关重要。此外,4-(2,4-二甲基环己基)-2-丁酮,3,4-二甲基-3-环己烯-1-甲醛,5-(3-苯基丙酰基)二氢-2(3H)的HOMO-LUMO带隙能-呋喃酮和异丙烯基-4-甲基-1,2-环己二醇分别为0.674 eV,3.918 eV,3.393 eV和1.588 eV。

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