Pothoczki Szilvia, Pusztai László, Bakó Imre
Wigner Research Centre for Physics , Hungarian Academy of Sciences , Konkoly-Thege M. út 29-33 , H-1121 Budapest , Hungary.
International Research Organization for Advanced Science and Technology (IROAST) , Kumamoto University , 2-39-1 Kurokami, Chuo-ku , Kumamoto 860-8555 , Japan.
J Phys Chem B. 2019 Sep 5;123(35):7599-7610. doi: 10.1021/acs.jpcb.9b05631. Epub 2019 Aug 26.
Series of molecular dynamics simulations for 2-propanol-water mixtures, as a function of temperature (between freezing and room temperature) and composition ( = 0, 0.5, 0.1, and 0.2), have been performed for temperatures reported in the only available experimental structure study. It is shown that when the all-atom optimized potentials for liquid simulations interatomic potentials for the alcohol are combined with the TIP4P/2005 water model, then the near-quantitative agreement with measured X-ray data, in the reciprocal space, can be achieved. Such an agreement justifies detailed investigations of structural, energetic, and dynamic properties on the basis of simulation trajectories. Here, we focus on characteristics related to hydrogen bonds (HB): cluster-, and in particular, ring formation, energy distributions, and lifetimes of HB-s have been scrutinized for the entire system, as well as for the water and isopropanol subsystems. It is demonstrated that similar to ethanol-water mixtures, the occurrence of 5-membered-hydrogen-bonded rings are significant, particularly at higher alcohol concentrations. Concerning HB energetics, an intriguing double maximum appears on the alcohol-alcohol HB energy distribution function. HB lifetimes have been found significantly longer in the mixtures than they are in pure liquids.
针对2-丙醇-水混合物,在唯一可用的实验结构研究报告的温度范围内(介于冰点和室温之间),根据温度和组成( = 0、0.5、0.1和0.2)进行了一系列分子动力学模拟。结果表明,当将用于液体模拟的全原子优化势与醇的原子间势与TIP4P/2005水模型相结合时,在倒易空间中可实现与测量的X射线数据近乎定量的吻合。这种吻合证明了基于模拟轨迹对结构、能量和动力学性质进行详细研究的合理性。在此,我们关注与氢键(HB)相关的特征:对整个系统以及水和异丙醇子系统,已仔细研究了簇,特别是环的形成、能量分布和氢键的寿命。结果表明,与乙醇-水混合物类似,五元氢键环的出现很显著,尤其是在较高醇浓度下。关于氢键能量学,在醇-醇氢键能量分布函数上出现了一个有趣的双最大值。已发现混合物中氢键的寿命比纯液体中的长得多。