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Isomerization melting, and polarity of model water clusters: (H_2O)_6 and (H_2O)_8

机译:异构化熔融和模型水团簇的极性:(H_2O)_6和(H_2O)_8

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Energetics, structural features, polarity, and melting transitions in water clusters containing up to eight molecules were studied using ab initio methods and empirical force field models. Our quantum approach was based on density functional theory performed at the generalized gradient approximation level. For the specific case of (H_2O)_6, we selected five conformers of similar energy with different geometries and dipolar moments. For these cases, the cyclic arrangement was found to be the only nonpolar aggregate. For (H_2O)_8, the most stable structures corresponded to nonpolar, cubic-like, D_(2d) and S_4 conformers. Higher energy aggregates exhibit a large spectrum in their polarities. The static polarizability was found to be proportional to the size of the aggregates and presents a weak dependence with the number of hydrogen bonds. In order to examine the influence of thermal fluctuations on the aggregates, we have performed a series of classical molecular dynamics experiments from low temperature up to the melting transition using two different effective pseudopotentials: the TIP4P and MCY models. Minimum energy structures for both classical potentials were found to reproduce reasonably well the results obtained using ab initio methods. Isomerization and phase transitions were monitored by following changes in dipole moments, number of hydrogen bonds and Lindemann's parameter. For (H_2O)_6 and (H_2O)_8, the melting transitions were found at T_m approx = 50 and 160 K, respectively; for both aggregates, we observed premelting transitions between well differentiated conformers as well.
机译:使用从头算方法和经验力场模型研究了包含多达8个分子的水团簇中的能量,结构特征,极性和熔融转变。我们的量子方法基于在广义梯度近似水平上执行的密度泛函理论。对于(H_2O)_6的特定情况,我们选择了五个具有相似几何形状和偶极矩的相似能量的构象异构体。对于这些情况,发现循环排列是唯一的非极性聚集体。对于(H_2O)_8,最稳定的结构对应于非极性立方样D_(2d)和S_4构象异构体。较高能量的聚集体在其极性上表现出大的光谱。发现静态极化率与聚集体的大小成比例,并且对氢键的数量呈弱依赖性。为了检查热涨落对聚集体的影响,我们使用两种不同的有效假电位:TIP4P和MCY模型,进行了一系列从低温到熔融转变的经典分子动力学实验。发现两种经典势能的最小能量结构都能很好地再现使用从头算方法获得的结果。通过跟踪偶极矩,氢键数和林德曼参数的变化来监测异构化和相变。对于(H_2O)_6和(H_2O)_8,熔融转变分别在T_m大约= 50和160 K处发现;对于这两种聚集体,我们还观察到了高分化构象异构体之间的预熔融转变。

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