Investigating the influence of different thermodynamic paths on the structural relaxation in a glass forming polymer melt
arXiv:cond-mat/9810020 · doi:10.1088/0953-8984/11/10/005
Abstract
We present results from Molecular Dynamics simulations of the thermal glass transition in a dense polymer melt. In previous work we compared the simulation data with the idealized version of mode coupling theory (MCT) and found that the theory provides a good description of the dynamics above the critical temperature. In order to investigate the influence of different thermodynamic paths on the structural relaxation (alpha-process), we performed simulations for three different pressures and are thus able to give a sketch of the critical line of MCT in the pressure-temperature-plane [(p,T)-plane], where, according to the idealised version of MCT, an ergodic-nonergodic transition should occur. Furthermore, by cooling our system along two different paths (an isobar and an isochor), with the same impact point on the critical line, we demonstrate that neither the critical temperature nor the exponent gamma depend on the chosen path.
26 pages, 2 tables, 19 figures
References in corpus (1)
Cited by in corpus (11)
- Effects of a nanoscopic filler on the structure and dynamics of a simulated polymer melt and the relationship to ultra-thin films
- Universal divergenceless scaling between structural relaxation and caged dynamics in glass-forming systems
- Statics and dynamics of a cylindrical droplet under an external body force
- Structural relaxation in supercooled orthoterphenyl
- Scaling of the dynamics of flexible Lennard-Jones chains. II. Effects of harmonic bonds
- A pathway towards proper modeling of physical properties
- Simulation Study of the Effects of Polymer Network Dynamics and Mesh Confinement on the Diffusion and Structural Relaxation of Penetrants
- The rigidity transition in polymer melts with van der Waals interactions
- Non-monotonic effect of additive particle size on the glass transition in polymers
- Simulation of models for the glass transition: Is there progress?
- Statics and Dynamics of Polymeric Droplets on Chemically Homogeneous and Heterogeneous Substrates