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首页> 外文期刊>International Journal of Quantum Chemistry >Nuclear fukui functions and the deformed atoms in molecules representation of the electron density: Application to gas-Phase RDX (hexahydro-1,3,5-trinitro- 1,3,5- triazine) electronic structure and decomposition
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Nuclear fukui functions and the deformed atoms in molecules representation of the electron density: Application to gas-Phase RDX (hexahydro-1,3,5-trinitro- 1,3,5- triazine) electronic structure and decomposition

机译:核的福井功能和分子中表示电子密度的变形原子:在气相RDX(六氢-1,3,5-三硝基-1,3,5-三嗪)的电子结构和分解中的应用

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摘要

The electronic structure and the onset of decomposition processes of the four conformers of the RDX molecule were studied through the density functional theory (DFT) along with the B3LYP functional and the 6-311+G(2d,p) Gaussian basis set. The computed DFT electron density was decomposed into atomic contributions using the deformed atoms in molecules (DAM) method, which allowed us to identify regions of electron accumulation and electron depletion of each conformer. The nuclear Fukui functions nuclear stiffness and nuclear reactivity index were then calculated. Both functions are atomic vectors, intrinsic molecular properties, which provide information for the onset of the fragmentation process, were further discussed through the analysis of the DAM electron density. The computed, decomposed electronic structures indicate that equatorial (E) NO2 (nitro) groups are less bulky than axial (A) groups, with the former contributing more than the latter to the increase of the ring delocalized electrons and, therefore, to the lower stability of conformers with more E groups. Concerning the decomposition, the RDX N-NO2 bond cleavage is the most probable process for the AAA, AEE, and EEE conformers, while for the AAE conformer, HONO elimination is favored in partial agreement with previous study.
机译:通过密度泛函理论(DFT)以及B3LYP泛函和6-311 + G(2d,p)高斯基集,研究了RDX分子四个构象体的电子结构和分解过程的开始。使用分子中变形原子(DAM)方法将计算出的DFT电子密度分解为原子贡献,这使我们能够识别每个构象异构体的电子积累和电子耗尽区域。然后计算核福井核的核刚度和核反应性指数。这两个功能都是原子向量,通过分析DAM电子密度进一步讨论了固有分子性质,这些性质为断裂过程的开始提供了信息。计算的分解电子结构表明,赤道(E)NO2(硝基)团比轴向(A)组的体积小,前者比后者对环离域电子增加的贡献更大,因此对环的电子降低的贡献更大。具有更多E基团的构象异构体的稳定性。关于分解,对于AAA,AEE和EEE构象异构体,RDX N-NO2键的裂解是最可能的过程,而对于AAE构象异构体,HONO消除在与先前研究的部分协议中受到青睐。

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