首页> 外文期刊>Acta Crystallographica, Section B. Structural Science >The experimental and theoretical QTAIMC study of the atomic and molecular interactions in dinitrogen tetroxide
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The experimental and theoretical QTAIMC study of the atomic and molecular interactions in dinitrogen tetroxide

机译:四氧化二氮中原子和分子相互作用的实验和理论QTAIMC研究

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The atomic and molecular interactions in a crystal of dinitrogen tetraoxide, -N2O4, have been studied in terms of the quantum topological theory of molecular structure using high-resolution, low-temperature X-ray diffraction data. The experimental electron density and electrostatic potential have been reconstructed with the Hansen–Coppens multipole model. In addition, the three-dimensional periodic electron density of crystalline -N2O4 has been calculated at the B3LYP/cc-pVDZ level of theory with and without the geometry optimization. The application of the quantum theory of atoms in molecules and crystals (QTAIMC) recovered the two types of intermolecular bond paths between O atoms in crystalline -N2O4, one measuring 3.094, the other 3.116 A ° . The three-dimensional distribution of the Laplacian of the electron density around the O atoms showed that the lumps in the negative Laplacian fit the holes on the O atoms in the adjacent molecules, both atoms being linked by the intermolecular bond paths. This shows that the Lewis-type molecular complementarity contributes significantly to intermolecular bonding in crystalline N2O4. Partial overlap of atomic-like basins created by zero-flux surfaces in both the electron density and the electrostatic potential show that attractive electrostatic interaction exists between O atoms even though they carry the same net formal charge. The exchange and correlation contributions to the potential energy density were also computed by means of the model functionals, which use the experimental electron density and its derivatives. It was found that the intermolecular interactions in -N2O4 are accompanied by the correlation energydensity ‘bridges’ lowering the local potential energy along the intermolecular OO bond paths in the electron density, while the exchange energy density governs the shape of bounded molecules.
机译:使用高分辨率,低温X射线衍射数据,根据分子结构的量子拓扑理论,研究了四氧化二氮-N2O4晶体中的原子和分子相互作用。用Hansen-Coppens多极模型重建了实验电子密度和静电势。另外,在有和没有几何优化的情况下,在理论上的B3LYP / cc-pVDZ水平上都已计算出晶体-N2O4的三维周期性电子密度。分子和晶体中的原子量子理论(QTAIMC)的应用恢复了晶体-N2O4中O原子之间的两种分子间键合路径,一种为3.094,另一种为3.116 A°。电子密度的拉普拉斯算子在O原子周围的三维分布表明,负拉普拉斯算子中的团块适合相邻分子中O原子上的孔,两个原子都通过分子间键合路径连接。这表明路易斯型分子的互补性对结晶N2O4中的分子间键合起了重要作用。由零通量表面在电子密度和静电势中产生的原子状盆地的部分重叠表明,即使O原子携带相同的净形式电荷,它们之间也存在有吸引力的静电相互作用。还通过使用实验电子密度及其导数的模型函数来计算对势能密度的交换和相关贡献。发现-N2O4中的分子间相互作用伴随有相关的能量密度“桥”,沿着电子密度的分子间OO键路径降低了局部势能,而交换能量密度决定了结合分子的形状。

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