Memar Zahra Ostadsharif, Moosavi Majid
Department of Chemistry, University of Isfahan, Isfahan 81746-73441, Iran.
J Chem Phys. 2023 Dec 28;159(24). doi: 10.1063/5.0180900.
In this study, we extended the optimized potentials for liquid simulation-ionic-liquid virtual site (OPLS-VSIL) force field (FF) to imidazolium-based dicationic ionic liquids (DILs) and evaluated the ability of different OPLS-based FFs (i.e., OPLS-2009IL, 0.8OPLS-2009IL, and OPLS-VSIL) in predicting different properties of the studied DIL by comparing their results with ab initio molecular dynamics (AIMD) simulation and experimental results. To achieve this purpose, MD simulations with three different OPLS-based FFs as well as AIMD simulation were performed for [C3(mim)2][NTF2]2 DIL and its structural, dynamical, vibrational, and volumetric properties were analyzed. Structural properties of the studied DIL, i.e., radial distribution functions (RDFs), structure factor, and hydrogen-bond network, showed that compared to 0.8OPLS-2009IL FF, there is a much better agreement between the results of both OPLS-2009IL and OPLS-VSIL FFs with the AIMD simulation. On the other hand, the results of dynamical properties, such as mean square displacements, van Hove correlation functions as well as hydrogen bond, ion pair, and ion cage dynamics, depicted that in both 0.8*OPLS-2009IL and OPLS-VSIL FFs, the dynamics of the system is almost similar, and compared to OPLS-2009IL FF, they have better agreements with experimental results where they exist. So, it can be seen that although reducing the total charge of studied DIL by 20% leads to an increase in the dynamics of the system, the type distribution of partial charges on each atom does not significantly affect the system's dynamics. The calculated infrared (IR) and power spectra showed that the vibrational features of studied DIL in three OPLS-based FFs are mostly the same and reducing total charge and different type distribution of partial charges have no significant effect on the studied system. Furthermore, in volumetric properties, OPLS-VSIL FF shows somehow better agreement with experimental results. Overall, the evaluation of different structural, dynamical, vibrational, and volumetric properties of [C3(mim)2][NTF2]2 DIL shows that the OPLS-VSIL FF may be the best choice among the different studied OPLS FFs.
在本研究中,我们将用于液体模拟的优化势-离子液体虚拟位点(OPLS-VSIL)力场(FF)扩展至基于咪唑鎓的双阳离子离子液体(DILs),并通过将不同基于OPLS的力场(即OPLS-2009IL、0.8OPLS-2009IL和OPLS-VSIL)的结果与从头算分子动力学(AIMD)模拟及实验结果进行比较,评估其预测所研究DIL不同性质的能力。为实现此目的,我们对[C3(mim)2][NTF2]2 DIL进行了三种不同基于OPLS的力场的分子动力学(MD)模拟以及AIMD模拟,并分析了其结构、动力学、振动和体积性质。所研究DIL的结构性质,即径向分布函数(RDFs)、结构因子和氢键网络,表明与0.8OPLS-2009IL力场相比,OPLS-2009IL和OPLS-VSIL力场的结果与AIMD模拟结果的吻合度更高。另一方面,动力学性质的结果,如均方位移、范霍夫关联函数以及氢键、离子对和离子笼动力学,表明在0.8*OPLS-2009IL和OPLS-VSIL力场中,系统的动力学几乎相似,并且与OPLS-2009IL力场相比,如果有实验结果,它们与实验结果的吻合度更好。所以,可以看出,虽然将所研究DIL的总电荷减少20%会导致系统动力学增加,但每个原子上部分电荷的类型分布对系统动力学没有显著影响。计算得到的红外(IR)光谱和功率谱表明,所研究DIL在三种基于OPLS的力场中的振动特征基本相同,总电荷的减少和部分电荷的不同类型分布对所研究系统没有显著影响。此外,在体积性质方面,OPLS-VSIL力场与实验结果的吻合度在某种程度上更好。总体而言,对[C3(mim)2][NTF2]2 DIL不同的结构、动力学、振动和体积性质的评估表明,OPLS-VSIL力场可能是所研究的不同OPLS力场中的最佳选择。