English

Linking density functional and mode coupling models for supercooled liquids

Statistical Mechanics 2016-04-20 v1

Abstract

We compare predictions from two familiar models of the metastable supercooled liquid respectively constructed with thermodynamic and dynamic approach. In the so called density functional theory (DFT) the free energy F[ρ]F[\rho] of the liquid is a functional of the inhomogeneous density ρ(r)\rho({\bf r}). The metastable state is identified as a local minimum of F[ρ]F[\rho]. The sharp density profile characterizing ρ(r)\rho({\bf r}) is identified as a single particle oscillator, whose frequency is obtained from the parameters of the optimum density function. On the other hand, a dynamic approach to supercooled liquids is taken in the mode coupling theory (MCT) which predict a sharp ergodicity-nonergodicity transition at a critical density. The single particle dynamics in the non-ergodic state, treated approximately, represents a propagating mode whose characteristic frequency is computed from the corresponding memory function of the MCT. The mass localization parameters in the above two models (treated in their simplest forms) are obtained respectively in terms of the corresponding natural frequencies depicted and are shown to have comparable magnitudes.

Keywords

Cite

@article{arxiv.1512.07588,
  title  = {Linking density functional and mode coupling models for supercooled liquids},
  author = {Leishangthem Premkumar and Neeta Bidhoodi and Shankar P. Das},
  journal= {arXiv preprint arXiv:1512.07588},
  year   = {2016}
}

Comments

24 pages, 10 figures

R2 v1 2026-06-22T12:16:59.639Z