Appalakondaiah S, Vaitheeswaran G, Lebègue S
†Advanced Centre of Research in High Energy Materials (ACRHEM), University of Hyderabad, Prof. C. R. Rao Road, Gachibowli, Hyderabad 500 046, India.
‡Laboratoire de Crystallographie, Résonance Magnétique et Modélisations (CRM2, UMR CNRS 7036), Institut Jean Barriol, Université de Lorraine, BP 239, Boulevard des Aiguillettes, 54506 Vandoeuvre-lès-Nancy, France.
J Phys Chem A. 2015 Jun 18;119(24):6574-81. doi: 10.1021/acs.jpca.5b04233. Epub 2015 May 29.
We have performed ab initio calculations for a series of energetic solids to explore their structural and electronic properties. To evaluate the ground state volume of these molecular solids, different dispersion correction methods were accounted in DFT, namely the Tkatchenko-Scheffler method (with and without self-consistent screening), Grimme's methods (D2, D3(BJ)), and the vdW-DF method. Our results reveal that dispersion correction methods are essential in understanding these complex structures with van der Waals interactions and hydrogen bonding. The calculated ground state volumes and bulk moduli show that the performance of each method is not unique, and therefore a careful examination is mandatory for interpreting theoretical predictions. This work also emphasizes the importance of quasiparticle calculations in predicting the band gap, which is obtained here with the GW approximation. We find that the obtained band gaps are ranging from 4 to 7 eV for the different compounds, indicating their insulating nature. In addition, we show the essential role of quasiparticle band structure calculations to correlate the gap with the energetic properties.
我们对一系列含能固体进行了从头算计算,以探究其结构和电子性质。为了评估这些分子固体的基态体积,在密度泛函理论(DFT)中考虑了不同的色散校正方法,即特卡琴科 - 谢弗勒方法(有和没有自洽筛选)、格林姆方法(D2、D3(BJ))以及vdW - DF方法。我们的结果表明,色散校正方法对于理解这些具有范德华相互作用和氢键的复杂结构至关重要。计算得到的基态体积和体模量表明,每种方法的性能并非唯一,因此在解释理论预测时必须仔细审查。这项工作还强调了准粒子计算在预测带隙方面的重要性,这里通过GW近似获得带隙。我们发现,对于不同的化合物,获得的带隙范围为4至7电子伏特,表明它们的绝缘性质。此外,我们展示了准粒子能带结构计算在将带隙与能量性质相关联方面的重要作用。