Zhang Bo, van Duin Adri C T, Johnson J Karl
United States Department of Energy, National Energy Technology Laboratory , Pittsburgh, Pennsylvania 15236, United States.
J Phys Chem B. 2014 Oct 16;118(41):12008-16. doi: 10.1021/jp5054277. Epub 2014 Oct 6.
Carbon dioxide interacts with the ionic liquid tetrabutylphosphonium glycinate, [P(C4)4][Gly], through both physical and chemical absorption. We present a parametrization of the ReaxFF force field for this system that accounts for both chemical and physical interactions. The parametrization was developed from an extensive training set including periodic density functional theory (DFT) calculations of reaction pathways between CO2 and the anion Gly in the condensed phase, condensed-phase molecular dynamics (MD) configurations, gas-phase CO2-anion and CO2-cation interactions, and gas-phase cluster calculations for intra-ion interactions. The optimized ReaxFF parameters capture the essential features of both physical and chemical interactions between CO2 and [P(C4)4][Gly] as compared with experiments, van der Waals-corrected DFT calculations, or, in the case of physical interactions, classical force field calculations. The probability distributions of the distance between C (from CO2) and N (from the anion) and the CO2 bend angles calculated from MD simulations with the optimized ReaxFF force field are in good general agreement with those from DFT-based MD simulations. We predict that the density of CO2/[P(C4)4][Gly] mixtures increases with increasing CO2 concentration up to at least 50 mol % CO2. We attribute the significant increase in density to the small effective volume occupied by chemically bound CO2 in the mixture. The predicted increase in density may be tested experimentally.
二氧化碳通过物理和化学吸收与离子液体甘氨酸四丁基鏻盐[P(C4)4][Gly]相互作用。我们给出了该体系的ReaxFF力场参数化,该参数化考虑了化学和物理相互作用。参数化是基于一个广泛的训练集开发的,包括二氧化碳与阴离子Gly在凝聚相中的反应路径的周期性密度泛函理论(DFT)计算、凝聚相分子动力学(MD)构型、气相二氧化碳-阴离子和二氧化碳-阳离子相互作用以及离子内相互作用的气相团簇计算。与实验、范德华校正的DFT计算相比,或者在物理相互作用的情况下与经典力场计算相比,优化后的ReaxFF参数捕捉了二氧化碳与[P(C4)4][Gly]之间物理和化学相互作用的基本特征。使用优化后的ReaxFF力场通过MD模拟计算得到的C(来自二氧化碳)与N(来自阴离子)之间距离以及二氧化碳弯曲角的概率分布与基于DFT的MD模拟结果总体上吻合良好。我们预测,二氧化碳/[P(C4)4][Gly]混合物的密度随着二氧化碳浓度的增加而增加,至少在二氧化碳浓度达到50 mol%之前是这样。我们将密度的显著增加归因于混合物中化学结合的二氧化碳占据的有效体积较小。预测的密度增加可以通过实验进行验证。