Mackenzie Campbell F, Spackman Peter R, Jayatilaka Dylan, Spackman Mark A
School of Molecular Sciences, University of Western Australia, Perth, 6009, Australia.
IUCrJ. 2017 Jul 4;4(Pt 5):575-587. doi: 10.1107/S205225251700848X. eCollection 2017 Sep 1.
The application domain of accurate and efficient CE-B3LYP and CE-HF model energies for intermolecular interactions in molecular crystals is extended by calibration against density functional results for 1794 molecule/ion pairs extracted from 171 crystal structures. The mean absolute deviation of CE-B3LYP model energies from DFT values is a modest 2.4 kJ mol for pairwise energies that span a range of 3.75 MJ mol. The new sets of scale factors determined by fitting to counterpoise-corrected DFT calculations result in minimal changes from previous energy values. Coupled with the use of separate polarizabilities for interactions involving monatomic ions, these model energies can now be applied with confidence to a vast number of molecular crystals. Energy frameworks have been enhanced to represent the destabilizing interactions that are important for molecules with large dipole moments and organic salts. Applications to a variety of molecular crystals are presented in detail to highlight the utility and promise of these tools.
通过对从171个晶体结构中提取的1794个分子/离子对的密度泛函结果进行校准,准确高效的CE-B3LYP和CE-HF模型能量在分子晶体分子间相互作用中的应用领域得到了扩展。对于跨度为3.75 MJ mol的成对能量,CE-B3LYP模型能量与DFT值的平均绝对偏差为适度的2.4 kJ mol。通过拟合经counterpoise校正的DFT计算确定的新比例因子集,与先前的能量值相比变化极小。再加上对涉及单原子离子的相互作用使用单独的极化率,这些模型能量现在可以放心地应用于大量分子晶体。能量框架已得到增强,以表示对具有大偶极矩的分子和有机盐很重要的去稳定相互作用。详细介绍了在各种分子晶体中的应用,以突出这些工具的实用性和前景。