Local random configuration-tree theory for string repetition and facilitated dynamics of glass
arXiv:1611.03586 · doi:10.1088/1742-5468/aaac56
Abstract
We derive a microscopic theory of glassy dynamics based on the transport of voids by micro-string motions, each of which involves particles arranged in a line hopping simultaneously displacing one another. Disorder is modeled by a random energy landscape quenched in the configuration space of distinguishable particles, but transient in the physical space as expected for glassy fluids. We study the evolution of local regions with m coupled voids. At low temperature, energetically accessible local particle configurations can be organized into a random tree with nodes and edges denoting configurations and micro-string propagations respectively. Such trees defined in the configuration space naturally describe systems defined in two- or three-dimensional physical space. A micro-string propagation initiated by a void can facilitate similar motions by other voids via perturbing the random energy landscape, realizing path interactions between voids or equivalently string interactions. We obtain explicit expressions of the particle diffusion coefficient and a particle return probability. Under our approximation, as temperature decreases, random trees of energetically accessible configurations exhibit a sequence of percolation transitions in the configuration space, with local regions containing fewer coupled voids entering the non-percolating immobile phase first. Dynamics is dominated by coupled voids of an optimal group size, which increases as temperature decreases. Comparison with a distinguishable-particle lattice model (DPLM) of glass shows very good quantitative agreements using only two adjustable parameters related to typical energy fluctuations and the interaction range of the micro-strings.
13 pages, 7 figures
References in corpus (5)
- Glassy dynamics of kinetically constrained models
- Conformational and Structural Relaxations of Poly(ethylene oxide) and Poly(propylene oxide) Melts: Molecular Dynamics Study of Spatial Heterogeneity, Cooperativity, and Correlated Forward-Backward Motion
- Emergent facilitation behavior in a distinguishable-particle lattice model of glass
- Effect of Energy Polydispersity on the Nature of Lennard-Jones Liquids
- Pair interaction ordering in fluids with random interactions
Cited by in corpus (10)
- Spatial heterogeneities in structural temperature cause Kovacs expansion gap paradox in aging of glasses
- Direct evidence of void induced structural relaxations in colloidal glass formers
- Fragile Glasses Associated with a Dramatic Drop of Entropy under Supercooling
- Diffusion coefficient power laws and defect-driven glassy dynamics in swap acceleration
- Deeper penetration of surface effects on particle mobility than on hopping rate in glassy polymer films
- Emergence of two-level systems in glass formers: a kinetic Monte Carlo study
- Kovacs Effect in Glass with Material Memory Revealed in Non-Equilibrium Particle Interactions
- Surface mobility gradient and emergent facilitation in glassy films
- The distinguishable-particle lattice model of glasses in three dimensions
- Recursive Algorithm to the Centroid of Free Area for Inherent Structure and Hopping Motion in Deeply Supercooled Binary Hard Disk Systems