Two liquid states of matter: A dynamic line on a phase diagram
Abstract
It is generally agreed that the supercritical region of a liquid consists of one single state (supercritical fluid). On the other hand, we show here that liquids in this region exist in two qualitatively different states: “rigid” and “nonrigid” liquids. Rigid to nonrigid transition corresponds to the condition τ≈τ0, where τ is the liquid relaxation time and τ0 is the minimal period of transverse quasiharmonic waves. This condition defines a new dynamic crossover line on the phase diagram and corresponds to the loss of shear stiffness of a liquid at all available frequencies and, consequently, to the qualitative change in many important liquid properties. We analyze this line theoretically as well as in real and model fluids and show that the transition corresponds to the disappearance of high-frequency sound, to the disappearance of roton minima, qualitative changes in the temperature dependencies of sound velocity, diffusion, viscous flow, and thermal conductivity, an increase in particle thermal speed to half the speed of sound, and a reduction in the constant volume specific heat to 2kB per particle. In contrast to the Widom line that exists near the critical point only, the new dynamic line is universal: It separates two liquid states at arbitrarily high pressure and temperature and exists in systems where liquid-gas transition and the critical point are absent altogether. We propose to call the new dynamic line on the phase diagram “Frenkel line”.
- Publication:
-
Physical Review E
- Pub Date:
- March 2012
- DOI:
- 10.1103/PhysRevE.85.031203
- arXiv:
- arXiv:1104.3414
- Bibcode:
- 2012PhRvE..85c1203B
- Keywords:
-
- 65.20.De;
- 62.10.+s;
- 63.50.-x;
- 66.20.Cy;
- General theory of thermodynamic properties of liquids including computer simulation;
- Mechanical properties of liquids;
- Vibrational states in disordered systems;
- Theory and modeling of viscosity and rheological properties including computer simulation;
- Condensed Matter - Statistical Mechanics;
- Condensed Matter - Soft Condensed Matter;
- Physics - Fluid Dynamics
- E-Print:
- 21 pages, 8 figures