Abstract
Emulating the multi-scale hierarchical structures of muscles offers a promising approach for constructing mechanically robust hydrogels. However, engineering two structurally distinct architectures across micro-to-mesoscopic length scales via simple, sustainable, and widely applicable approaches remains challenging. Herein, we developed a sequentially coupled thermal-ionic modulation strategy to fabricate robust muscle-like hydrogel nanocomposites with mesoscale anisotropic and microscale hierarchical architectures simultaneously. The first-tier mesoscale anisotropic hydrogel matrix was induced by controlled temperature gradient under thermally asymmetric cyclic freeze-thaw process via a conductive/insulative design of gelation condition. The second-tier microscale hierarchical architecture was further precisely generated by Hofmeister effect mediated ionic salting-out treatment. This sequentially coupled thermal-ionic modulation strategy, combined with nanoparticle-assisted interfacial reinforcement, enables sustainable fabrication of robust muscle-like hydrogel nanocomposite to achieve improved mechanical performance including 10.12 MPa ultimate strength, 512% failure strain, 23.24 MJ/m3 toughness, 26.56 kJ/m2 fracture energy, and 16.87 kJ/m2 fatigue threshold. This work provides a practical route for constructing mechanically robust biomimetic materials with potential applications in load-bearing biomaterials and fatigue-resistant flexible electronics.
| Original language | English |
|---|---|
| Article number | e77366 |
| Journal | Advanced Functional Materials |
| Volume | 36 |
| Issue number | 68 |
| DOIs | |
| State | Published - 24 Aug 2026 |
Keywords
- anisotropy
- microphase separation
- muscle-inspired material
- temperature gradient
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