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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >The Effect of Intermolecular Interactions on Local Density Inhomogeneities and Related Dynamics in Pure Supercritical Fluids. A Comparative Molecular Dynamics Simulation Study
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The Effect of Intermolecular Interactions on Local Density Inhomogeneities and Related Dynamics in Pure Supercritical Fluids. A Comparative Molecular Dynamics Simulation Study

机译:分子间相互作用对纯超临界流体中局部密度不均匀性和相关动力学的影响。比较分子动力学模拟研究

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The effect of intermolecular interactions of different strength on the local density inhomogeneities in pure supercritical fluids (scfs), with different intramolecular structure, was investigated by employing molecular dynamics (MD) simulation techniques. The simulations were performed at state points along an isotherm close to the critical temperature of each system (T-r = T/T-c = 1.03). The molecular fluids under study have been chosen on the basis of the electrostatic character of their intermolecular interactions as follows: monatomic, dipolar and hydrogen bonding (HB), quadrupolar, and octupolar. In the case of dipolar scfs, their HB nature when present was systematically explored and related to the behavior of the created local density inhomogeneities at all densities. The results obtained reveal strong influence of the dipolar and HB interactions of the investigated systems upon the local density augmentation. We found that this effect is fairly larger in the case of the dipolar and HB fluids (H2O, CH3OH, and NH3) compared to those for the non-dipolar ones (Xe, CH4, CO2, and N-2). In the case of sc CO2, the dependence of the local density augmentation on the bulk density is in agreement with available experimental data as also reported previously. The estimated average number of hydrogen bonds per molecule < n(HB)> in these HB fluids shows an analogue nonlinear trend compared to the behavior of the average coordination numbers N-co(rho) of a particle with bulk density. The local density dynamics of the first and second solvation shell of each fluid were further analyzed and related to our previously proposed [Skarmoutsos, L; Samios, J. J. Chem. Phys. 2007, 126, 044503] different time-scale relaxation mechanisms. Finally, the effect of the different strength of the molecular interactions corresponding to these fluids upon the local density dynamics has also been revealed in the behavior of the predicted appropriate time correlation functions and their corresponding correlation times.
机译:通过采用分子动力学(MD)模拟技术研究了不同强度的分子间相互作用对分子结构不同的纯超临界流体(scfs)中局部密度不均匀性的影响。在靠近每个系统的临界温度的等温线的状态点(T-r = T / T-c = 1.03)下进行了仿真。根据分子间相互作用的静电特性,如下选择了所研究的分子流体:单原子,偶极和氢键(HB),四极和八极。对于偶极性scf,对它们的HB性质(存在时)进行系统地研究,并与在所有密度下产生的局部密度不均匀性的行为有关。获得的结果揭示了所研究系统的偶极和HB相互作用对局部密度增加的强烈影响。我们发现,与非偶极流体(Xe,CH4,CO2和N-2)相比,偶极流体和HB流体(H2O,CH3OH和NH3)的影响要大得多。在sc CO2的情况下,局部密度增加对体积密度的依赖性与可用的实验数据一致,如先前所报道。与具有堆积密度的颗粒的平均配位数N-co(rho)的行为相比,这些HB流体中每个分子的估计平均氢键数显示出类似的非线性趋势。进一步分析了每种流体的第一和第二溶剂化壳的局部密度动力学,并将其与我们先前提出的[Skarmoutsos,L; Samios,J.J. Chem。物理2007,126,044503]不同的时标松弛机制。最后,还通过预测的适当时间相关函数及其对应的相关时间的行为揭示了与这些流体相对应的分子相互作用的不同强度对局部密度动力学的影响。

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