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Relation between concentration fluctuations and dynamical heterogeneities in binary glass-forming liquids: A molecular dynamics simulation study

机译:二元玻璃形成液中浓度波动与动态异质性的关系:分子动力学模拟研究

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We perform molecular dynamics simulations of binary glass-forming liquids with high dynamical contrast. In detail, we mix water-like molecules with various polarities, which exhibit strongly different dynamics but very similar structures as neat liquids. It is found that these mixtures show concentration fluctuations, which strongly grow upon cooling towards an expected mixing-demixing phase transition. Because of the developing microphase segregation, the composition and temperature ranges accessible to our approach are limited, but the studied mixtures are ideal models to ascertain the relation between concentration fluctuations and molecular dynamics, in particular, the glassy slowdown of binary liquids, including aqueous solutions. We find that the dynamics of the components decouple upon cooling. While the dynamics of the slow component resembles that of neat glass formers, that of the fast component shows different features, including sub-linear diffusion on length and time scales beyond that of local particle cages and quasi-logarithmic decays of correlation functions. We show that this "anomalous dynamics" of the fast component receives a simple explanation based on a strong dependence of the particle mobility on the local concentration in combination with microphase segregation and dynamical contrast. Explicitly, spatially heterogeneous dynamics, which are more extended and tenacious than in neat glass formers, result from growing concentration fluctuations upon cooling. Due to a high dynamical asymmetry of the components at low temperatures, the slow species sustains the microphase segregation in the mixture, while the fast component moves along the concentration and mobility gradients, leading to remarkable dynamical features.
机译:我们使用高动态对比进行二元玻璃形成液体的分子动力学模拟。详细地,我们将具有各种极性的水状分子混合,其表现出强烈不同的动力学,但非常相似的结构作为纯液体。发现这些混合物显示出浓度波动,其在冷却朝向预期的混合分层相转变时强烈生长。由于开发的磁镜偏析,我们方法可接近的组成和温度范围是有限的,但是研究的混合物是确定浓度波动和分子动力学之间关系的理想模型,特别是二元液体的玻璃慢,包括水溶液。我们发现部件的动态在冷却时脱钩。虽然慢速成分的动态类似于纯净的玻璃造盘器,但快速分量的动态显示了不同的特征,包括超出局部粒子笼的长度和时间尺度的子线性扩散和相关函数的准对数衰减。我们表明,快速组分的这种“异常动态”基于颗粒迁移率对局部浓度的强大依赖性,与微相隔离和动力学对比组合的基础依赖性。明确地,空间异构动态,比在整齐的玻璃造型器中更加延伸和韧性,导致冷却时浓度的浓度波动。由于低温下的组分的高动态不对称,缓慢物质可持续混合物中的微相偏析,而快速部件沿着浓度和迁移率梯度移动,导致具有显着的动态特征。

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