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ReaxFF-lg: Correction of the ReaxFF Reactive Force Field for London Dispersion, with Applications to the Equations of State for Energetic Materialsud

机译:ReaxFF-lg:伦敦色散的ReaxFF反应力场的校正及其在含能材料状态方程中的应用 ud

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摘要

The practical levels of density functional theory (DFT)udfor solids (LDA, PBE, PW91, B3LYP) are well-known not to account adequately for the London dispersion (van der Waals attraction) so important in molecular solids, leading to equilibrium volumes for molecular crystals ∼10-15% too high. The ReaxFF reactive force field is based on fitting such DFT calculations and suffers from the same problem. In the paper we extend ReaxFF by adding a London dispersion term with a form such that it has low gradients (lg) atudvalence distances leaving the already optimized valence interactions intact but behaves as 1/R^6 for large distances. We derive here these lg corrections to ReaxFF based on the experimental crystal structure data for graphite, polyethylene (PE), carbon dioxide, and nitrogen and for energetic materials: hexahydro-1,3,5-trinitro-ud1,3,5-s-triazine (RDX), pentaerythritol tetranitrate (PETN), 1,3,5-triamino-2,4,6-trinitrobenzene (TATB), and nitromethane (NM). After this dispersion correction the average error of predicted equilibrium volumes decreases from 18.5 to 4.2% for the above systems. We find that the calculated crystal structures and equation of state with ReaxFF-lg are in good agreement with experimentaludresults. In particular, we examined the phase transition between α-RDX and γ-RDX, finding that ReaxFF-lg leads to excellent agreement for both the pressure and volume of this transition occurring at ∼4.8 GPa and ∼2.18 g/cm^3 density from ReaxFF-lg vs 3.9 GPa and ∼2.21 g/cm^3 from experiment. We expect ReaxFF-lg to improve the descriptions of the phase diagrams for other energetic materials.
机译:众所周知,固体(LDA,PBE,PW91,B3LYP)的密度泛函理论(DFT) ud的实用水平不足以充分考虑在分子固体中如此重要的伦敦扩散(范德华吸引力),从而导致平衡体积对于分子晶体来说太高了10-15%。 ReaxFF反作用力场是基于拟合此类DFT计算得出的,并且存在相同的问题。在本文中,我们通过添加伦敦色散项来扩展ReaxFF的形式,以使其在 udvalence距离处具有低梯度(lg),而保留已优化的价键相互作用,但对于大距离而言其表现为1 / R ^ 6。我们在此根据石墨,聚乙烯(PE),二氧化碳和氮气以及高能材料的实验晶体结构数据得出对ReaxFF的这些lg校正:六氢-1,3,5-三硝基- ud1,3,5- s-三嗪(RDX),季戊四醇四硝酸酯(PETN),1,3,5-三氨基-2,4,6-三硝基苯(TATB)和硝基甲烷(NM)。经过色散校正后,上述系统的预测平衡体积的平均误差从18.5%降低至4.2%。我们发现用ReaxFF-lg计算的晶体结构和状态方程与实验结果非常吻合。特别是,我们检查了α-RDX和γ-RDX之间的相变,发现ReaxFF-lg导致在4.8 GPa和约2.18 g / cm ^ 3的密度下发生的这种转变的压力和体积都达到了极好的一致性。实验得出ReaxFF-lg比3.9 GPa和约2.21 g / cm ^ 3。我们期望ReaxFF-lg改进其他含能材料的相图描述。

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