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◆ RSC advances2026-08-12

A conductive and thixotropic dual-network hydrogel based on Alyssum campestre seed gum and Matricaria chamomilla L. extract.

Mona Baniasadi, Mahsa Baghban Salehi, Hossein Baniasadi

原始摘要(英文原文)· Original abstract
Developing conductive hydrogels with balanced mechanical, electrical, and biological properties remains a major challenge for biomedical applications. In this study, a multifunctional conductive dual-network hydrogel was developed using Alyssum campestre seed gum (ACSG) and Matricaria chamomilla L. extract (CE). The hydrogel network was constructed by combining a chemically crosslinked polyacrylamide network with Mg2+-mediated physical interactions to form an interpenetrating dual-network structure. FTIR analysis indicated the incorporation of CE into the hydrogel matrix and suggested possible intermolecular interactions, while SEM observations revealed that CE produced a more compact porous microstructure with reduced pore size. Thermogravimetric analysis showed that incorporating CE did not adversely affect the hydrogel's thermal stability. The CE-containing hydrogel exhibited improved viscoelastic properties, including a higher storage modulus, an extended linear viscoelastic region, and rapid self-recovery during cyclic strain measurements. In addition, the CE-containing hydrogel exhibited ionic conductivities of (4.99 ± 0.78) × 10-3 and (7.09 ± 1.60) × 10-5 S cm-1 in the freshly prepared and equilibrium-swollen (ESR) states, respectively. Furthermore, the hydrogels maintained high H9c2 cell metabolic activity (>90%) after 72 h. These findings demonstrate an effective strategy for tuning the structural, rheological, electrical, and biological properties of ACSG-based conductive dual-network hydrogels.
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A conductive and thixotropic dual-network hydrogel based on Alyssum campestre seed gum and Matricaria chamomilla L. extract. — 科研速览 Science Skim