Chemical and Biochemical Reference Data Division, Material Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, Maryland 20899-6320, United States.
J Phys Chem B. 2010 Dec 16;114(49):16460-4. doi: 10.1021/jp105272q. Epub 2010 Nov 19.
The connection of hydrogen bonding between water and acetonitrile in determining the microheterogeneity of the liquid mixture is examined using NPT molecular dynamics simulations. Mixtures for six, rigid, three-site models for acetonitrile and one water model (SPC/E) were simulated to determine the amount of water-acetonitrile hydrogen bonding. Only one of the six acetonitrile models (TraPPE-UA) was able to reproduce both the liquid density and the experimental estimates of hydrogen bonding derived from Raman scattering of the CN stretch band or from NMR quadrupole relaxation measurements. A simple modification of the acetonitrile model parameters for the models that provided poor estimates produced hydrogen-bonding results consistent with experiments for two of the models. Of these, only one of the modified models also accurately determined the density of the mixtures. The self-diffusion coefficient of liquid acetonitrile provided a final winnowing of the modified model and the successful, unmodified model. The unmodified model is provisionally recommended for simulations of water-acetonitrile mixtures.
使用 NPT 分子动力学模拟研究了氢键在水和乙腈之间的连接在确定液体混合物的微观不均匀性中的作用。模拟了六种刚性三位置乙腈模型和一种水模型(SPC/E)的混合物,以确定水-乙腈氢键的数量。在这六种乙腈模型中,只有一种(TraPPE-UA)能够重现液体密度和实验估计的氢键,这些氢键是通过 CN 伸缩带的拉曼散射或通过 NMR 四极矩弛豫测量得出的。对提供较差估计值的模型的乙腈模型参数进行简单修改,得到了与实验一致的氢键结果,其中两个模型。在这些模型中,只有一个经过修改的模型也能准确地确定混合物的密度。液体乙腈的自扩散系数最终筛选出了经过修改的模型和成功的未修改模型。对于水-乙腈混合物的模拟,建议暂时使用未修改的模型。