Physics Faculty, Kemerovo State University, Kemerovo, Russia.
Phys Chem Chem Phys. 2011 Apr 7;13(13):5679-86. doi: 10.1039/c0cp02200d. Epub 2011 Feb 10.
We investigated the electronic structure of crystalline naphthalene and anthracene within the framework of density functional theory including van der Waals interactions (DFT-D). It is established that for better agreement with experimental values it is necessary to use the increased values of the van der Waals radii, which is caused by an overestimated value of the van der Waals interactions in crystalline linear oligoacenes. Utilization of the DFT-D leads to a correct account of the dispersion forces, which results in a high precision of the computed lattice parameters and cohesive energy. Based on the relaxed crystal structures, we have computed the total and deformation electron density and determined the mechanism of chemical bonds formation in crystals of naphthalene and anthracene. It has been established that the chemical bond in molecular crystals is formed under the influence of not only intramolecular but also intermolecular interactions. On the basis of the Mulliken population analysis it was revealed that two C(3) atoms in naphthalene (or C(3) and C(4) in anthracene) have a positive charge and the population of the rest of the carbon atoms increased, as compared with isolated molecule.
我们在包含范德华相互作用(DFT-D)的密度泛函理论框架内研究了晶体萘和蒽的电子结构。研究表明,为了更好地与实验值吻合,有必要使用增大的范德华半径值,这是由于晶体线性齐聚物中范德华相互作用被高估所致。DFT-D 的应用导致了对色散力的正确考虑,从而实现了计算晶格参数和内聚能的高精度。基于弛豫的晶体结构,我们计算了总电子密度和变形电子密度,并确定了萘和蒽晶体中化学键形成的机制。研究结果表明,分子晶体中的化学键是在分子内和分子间相互作用的共同影响下形成的。基于 Mulliken 布居分析,我们发现萘中的两个 C(3)原子(或蒽中的 C(3)和 C(4)原子)带有正电荷,其余碳原子的布居数增加,与孤立分子相比有所增加。