We develop a simple yet comprehensive nonlinear model to describe relaxation phenomena in amorphous glass-formers near the glass transition temperature. The model is based on the two-state, two-(time)scale (TS2) framework and describes the isothermal relaxation of specific volume, enthalpy, or shear stress via a simple first-order nonlinear differential equation (the Trachenko-Zaccone [TZ] equation) for local cooperative events. These nonlinear dynamics of cooperatively rearranging regions naturally arise from the TS2 framework. We demonstrate that the solutions of the TZ equation comprehensively encompass the Debye exponential relaxation, the Kohlrausch-Williams-Watts stretched and compressed relaxations, and the Guiu-Pratt logarithmic relaxation. Furthermore, for the case of stress relaxation modeling, our model recovers, as one of its limits, the Eyring law for plastic flow, where the Eyring activation volume is related to thermodynamic parameters of the material. Using the example of polystyrene, we demonstrate how our model successfully describes the Kovacs' "asymmetry of approach" specific volume and enthalpy experiments, as well as the stress relaxation. Other potential applications of the model, including the dielectric relaxation, are also discussed. The presented approach disentangles the physical origins of different relaxation laws within a single general framework based on the underlying physics.

Unifying Physical Framework for Stretched-Exponential, Compressed-Exponential, and Logarithmic Relaxation Phenomena in Glassy Polymers / V.V. Ginzburg, O.V. Gendelman, A. Zaccone. - In: MACROMOLECULES. - ISSN 0024-9297. - 57:5(2024 Feb 23), pp. 2520-2529. [10.1021/acs.macromol.3c02480]

Unifying Physical Framework for Stretched-Exponential, Compressed-Exponential, and Logarithmic Relaxation Phenomena in Glassy Polymers

A. Zaccone
Ultimo
2024

Abstract

We develop a simple yet comprehensive nonlinear model to describe relaxation phenomena in amorphous glass-formers near the glass transition temperature. The model is based on the two-state, two-(time)scale (TS2) framework and describes the isothermal relaxation of specific volume, enthalpy, or shear stress via a simple first-order nonlinear differential equation (the Trachenko-Zaccone [TZ] equation) for local cooperative events. These nonlinear dynamics of cooperatively rearranging regions naturally arise from the TS2 framework. We demonstrate that the solutions of the TZ equation comprehensively encompass the Debye exponential relaxation, the Kohlrausch-Williams-Watts stretched and compressed relaxations, and the Guiu-Pratt logarithmic relaxation. Furthermore, for the case of stress relaxation modeling, our model recovers, as one of its limits, the Eyring law for plastic flow, where the Eyring activation volume is related to thermodynamic parameters of the material. Using the example of polystyrene, we demonstrate how our model successfully describes the Kovacs' "asymmetry of approach" specific volume and enthalpy experiments, as well as the stress relaxation. Other potential applications of the model, including the dielectric relaxation, are also discussed. The presented approach disentangles the physical origins of different relaxation laws within a single general framework based on the underlying physics.
English
Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
Articolo
Esperti anonimi
Pubblicazione scientifica
   Solving the multi-scale problem in materials mechanics: a pathway to chemical design (Multimech)
   Multimech
   EUROPEAN COMMISSION
   101043968
23-feb-2024
American Chemical Society (ACS)
57
5
2520
2529
10
Pubblicato
Periodico con rilevanza internazionale
crossref
Aderisco
info:eu-repo/semantics/article
Unifying Physical Framework for Stretched-Exponential, Compressed-Exponential, and Logarithmic Relaxation Phenomena in Glassy Polymers / V.V. Ginzburg, O.V. Gendelman, A. Zaccone. - In: MACROMOLECULES. - ISSN 0024-9297. - 57:5(2024 Feb 23), pp. 2520-2529. [10.1021/acs.macromol.3c02480]
partially_open
Prodotti della ricerca::01 - Articolo su periodico
3
262
Article (author)
Periodico con Impact Factor
V.V. Ginzburg, O.V. Gendelman, A. Zaccone
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1107838
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