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Modeling the interplay of inter- and intramolecular hydrogen bonding in conformational polymorphs

机译:模拟构象多晶型中分子间和分子内氢键的相互作用

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The predicted stability differences of the conformational polymorphs of oxalyl dihydrazide and ortho-acetamidobenzamide are unrealistically large when the modeling of intermolecular energies is solely based on the isolated-molecule charge density, neglecting charge density polarization. Ab initio calculated crystal electron densities showed qualitative differences depending on the spatial arrangement of molecules in the lattice with the greatest variations observed for polymorphs that differ in the extent of inter- and intramolecular hydrogen bonding. We show that accounting for induction dramatically alters the calculated stability order of the polymorphs and reduces their predicted stability differences to be in better agreement with experiment. Given the challenges in modeling conformational polymorphs with marked differences in hydrogen bonding geometries, we performed an extensive periodic density functional study with a range of exchange-correlation functionals using both atomic and plane wave basis sets. Although such electronic structure methods model the electrostatic and polarization contributions well, the underestimation of dispersion interactions by current exchange-correlation functionals limits their applicability. The use of an empirical dispersion-corrected density functional method consistently reduces the structural deviations between the experimental and energy minimized crystal structures and achieves plausible stability differences. Thus, we have established which types of models may give worthwhile relative energies for crystal structures and other condensed phases of flexible molecules with intra- and intermolecular hydrogen bonding capabilities, advancing the possibility of simulation studies on polymorphic pharmaceuticals. (c) 2008 American Institute of Physics.
机译:当分子间能量的建模仅基于孤立分子的电荷密度而忽略电荷密度极化时,草酰二酰肼和邻乙酰氨基苯甲酰胺的构象多晶型的预测稳定性差异不切实际地大。从头算出的晶体电子密度显示出定性差异,具体取决于晶格中分子的空间排列,而观察到的最大变化是分子间和分子内氢键结合程度不同的多晶型物。我们表明,归纳感应极大地改变了多晶型物的计算稳定性顺序,并降低了其预测的稳定性差异,使其与实验更好地吻合。鉴于建模具有氢键几何形状显着差异的构象多晶型物的挑战,我们进行了广泛的周期性密度泛函研究,并使用原子和平面波基组进行了一系列交换相关泛函的研究。尽管这样的电子结构方法很好地模拟了静电和极化贡献,但是通过电流交换相关函数低估了色散相互作用,限制了它们的适用性。使用经验色散校正的密度泛函方法可不断减小实验晶体和能量最小化晶体结构之间的结构偏差,并实现合理的稳定性差异。因此,我们确定了哪些类型的模型可以为具有分子内和分子间氢键功能的柔性分子的晶体结构和其他缩合相提供有价值的相对能量,从而提高了对多态药物进行模拟研究的可能性。 (c)2008年美国物理研究所。

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