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Main Authors: Dutta, Agniva, Ginzburg, Valeriy V., Vasilyev, Gleb, Zussman, Eyal
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2509.02219
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author Dutta, Agniva
Ginzburg, Valeriy V.
Vasilyev, Gleb
Zussman, Eyal
author_facet Dutta, Agniva
Ginzburg, Valeriy V.
Vasilyev, Gleb
Zussman, Eyal
contents Hydrogels are increasingly recognized as a versatile platform for applications spanning from tissue engineering to soft robotics or flexible electronics. Recent efforts have focused on enhancing and tailoring their mechanical performance to meet application-specific demands. However, the intricate viscoelastic response of hydrogels remains challenging to capture using conventional phenomenological models. In this study, we prepared a series of tough dual crosslinked hydrogels -- poly(methacrylamide-co-acrylic acid)-Fe3+ and systematically tuned their mechanical properties by leveraging the salting-out effect. The viscoelastic behavior of the hydrogels was characterized under shear deformations, and a four-parameter Fractional Maxwell Model (FMM) was constructed to quantitatively describe oscillatory shear, creep, and stress relaxation responses. The influence of salt concentration on each FMM parameter was analyzed and correlated with bulk mechanical performance. This framework provides a first step toward capturing the complex viscoelastic nature of the advanced hydrogels and lays the foundation for developing more comprehensive nonlinear constitutive models.
format Preprint
id arxiv_https___arxiv_org_abs_2509_02219
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dual Cross-Linked Hydrogels: Linear Rheology and Fractional Calculus Modeling
Dutta, Agniva
Ginzburg, Valeriy V.
Vasilyev, Gleb
Zussman, Eyal
Soft Condensed Matter
Hydrogels are increasingly recognized as a versatile platform for applications spanning from tissue engineering to soft robotics or flexible electronics. Recent efforts have focused on enhancing and tailoring their mechanical performance to meet application-specific demands. However, the intricate viscoelastic response of hydrogels remains challenging to capture using conventional phenomenological models. In this study, we prepared a series of tough dual crosslinked hydrogels -- poly(methacrylamide-co-acrylic acid)-Fe3+ and systematically tuned their mechanical properties by leveraging the salting-out effect. The viscoelastic behavior of the hydrogels was characterized under shear deformations, and a four-parameter Fractional Maxwell Model (FMM) was constructed to quantitatively describe oscillatory shear, creep, and stress relaxation responses. The influence of salt concentration on each FMM parameter was analyzed and correlated with bulk mechanical performance. This framework provides a first step toward capturing the complex viscoelastic nature of the advanced hydrogels and lays the foundation for developing more comprehensive nonlinear constitutive models.
title Dual Cross-Linked Hydrogels: Linear Rheology and Fractional Calculus Modeling
topic Soft Condensed Matter
url https://arxiv.org/abs/2509.02219