首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >First-Principles Lattice Energy Calculation of Urea and Hexamine Crystals by a Combination of Periodic DFT and MP2 Two-Body Interaction Energy Calculations
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First-Principles Lattice Energy Calculation of Urea and Hexamine Crystals by a Combination of Periodic DFT and MP2 Two-Body Interaction Energy Calculations

机译:结合周期性DFT和MP2两体相互作用能计算,计算尿素和六胺晶体的第一性原理晶格能

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This article proposes a new method for the accurate evaluation of the lattice energies (stabilization energies associated with the formation of crystals from isolated molecules) of molecular crystals by a combination of DFT and MP2 calculations. The interactions of well-separated molecules were evaluated by periodic DFT calculations. The interactions with neighboring molecules were evaluated by MP2-level two-body interaction energy calculations with the neighboring molecules. The sublimation energies calculated for crystals of urea and hexamine using the proposed method (21.2 and 20.0 kcal/mol, respectively) were close to the experimental values (20.9—23.6 and 17.7—18.8 kcal/mol, respectively). The lattice energies calculated for the two crystals by the proposed method are significantly different from those obtained by DFT calculations, suggesting that the dispersion contribution to the lattice energy is significant even in the crystal, where molecules are bound by hydrogen bonds. Lattice energies calculated by changing the range of the neighboring molecules show that the nearest-neighboring molecules are mainly responsible for the dispersion interactions in the crystals.
机译:本文提出了一种通过结合DFT和MP2计算来准确评估分子晶体的晶格能(与从孤立的分子形成晶体相关的稳定能)的新方法。通过定期的DFT计算评估了分离良好的分子之间的相互作用。通过与相邻分子的MP2级两体相互作用能计算来评估与相邻分子的相互作用。使用建议的方法计算的尿素和六胺晶体的升华能量(分别为21.2和20.0 kcal / mol)接近实验值(分别为20.9-23.6和17.7-18.8 kcal / mol)。通过提出的方法计算的两种晶体的晶格能量与通过DFT计算获得的晶格能量显着不同,这表明即使在分子被氢键结合的晶体中,对晶格能量的色散贡献也很明显。通过改变相邻分子的范围计算出的晶格能量表明,最邻近的分子主要负责晶体中的分散相互作用。

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