Departamento de Física, Universidade Federal de Ouro Preto, Ouro Preto, MG 35400-000, Brazil.
J Chem Phys. 2010 Jun 21;132(23):234509. doi: 10.1063/1.3429254.
Molecular dynamics simulations and instantaneous normal mode (INM) analysis of a fluid with core-softened pair interactions and waterlike liquid-state anomalies are performed to obtain an understanding of the relationship between thermodynamics, transport properties, and the potential energy landscape. Rosenfeld scaling of diffusivities with the thermodynamic excess and pair correlation entropy is demonstrated for this model. The INM spectra are shown to carry information about the dynamical consequences of the interplay between length scales characteristic of anomalous fluids, such as bimodality of the real and imaginary branches of the frequency distribution. The INM spectral information is used to partition the liquid entropy into two contributions associated with the real and imaginary frequency modes; only the entropy contribution from the imaginary branch captures the nonmonotonic behavior of the excess entropy and diffusivity in the anomalous regime of the fluid.
采用分子动力学模拟和瞬时法向模式(INM)分析了具有核软化对相互作用和类水液体状态异常的流体,以了解热力学、输运性质和势能景观之间的关系。对于该模型,证明了扩散率与热力学过剩和对关联熵的罗森菲尔德标度。结果表明,INM 谱携带有关异常流体特征长度尺度之间相互作用的动力学后果的信息,例如频率分布的实部和虚部的双峰性。利用 INM 谱信息将液体熵分为与实部和虚部频率模式相关的两个贡献;只有来自虚部的熵贡献才能捕获流体异常区域中过剩熵和扩散率的非单调行为。