This chapter introduces a minimal model for gelling systems and examines the dynamic behavior by means of numerical simulations. At the gelation transition, a viscous liquid transforms to an elastic disordered solid. This corresponds to the formation of a spanning structure that makes the system able to bear stress. In polymer systems, the structure formation is due to chemical bonding, producing a polymerization process. The gelling system typically displays critical power law behavior in the viscoelastic response and slow dynamics. The relaxation functions show, at long times, a stretched exponential decay, and at the gel point the relaxation process becomes critically slow. This suggests a unifying picture for gelation phenomena, connecting classical gelation and recent results on colloidal systems. By varying the model parameters, the slow dynamics present a crossover from the classical polymer gelation to dynamics more typical of colloidal systems, with a glassy regime that is interpreted in terms of effective clusters.

Structural arrest in chemical and colloidal gels

A Fierro;A Coniglio
2004

Abstract

This chapter introduces a minimal model for gelling systems and examines the dynamic behavior by means of numerical simulations. At the gelation transition, a viscous liquid transforms to an elastic disordered solid. This corresponds to the formation of a spanning structure that makes the system able to bear stress. In polymer systems, the structure formation is due to chemical bonding, producing a polymerization process. The gelling system typically displays critical power law behavior in the viscoelastic response and slow dynamics. The relaxation functions show, at long times, a stretched exponential decay, and at the gel point the relaxation process becomes critically slow. This suggests a unifying picture for gelation phenomena, connecting classical gelation and recent results on colloidal systems. By varying the model parameters, the slow dynamics present a crossover from the classical polymer gelation to dynamics more typical of colloidal systems, with a glassy regime that is interpreted in terms of effective clusters.
2004
Inglese
Antonio Coniglio, Annalisa Fierro, Hans J. Herrmann and Mario Nicodemi
Unifying Concepts in Granular Media and Glasses
195
202
8
0-444-51607-7
http://www.sciencedirect.com/science/article/pii/B9780444516077500169
ELSEVIER SCIENCE BV, PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
AMSTERDAM
PAESI BASSI
Sì, ma tipo non specificato
4
02 Contributo in Volume::02.01 Contributo in volume (Capitolo o Saggio)
268
none
Del Gado, E; Fierro, A; de Arcangelis, L; Coniglio, A
info:eu-repo/semantics/bookPart
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/123723
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