Abstract
Bio-based nanocomposite hydrogels with controllable network structures are attractive candidates for functional printable materials. In this work, a bioinspired cellulose nanofibril (CNF) /xylan/gelatin hydrogel system was developed through the integration of CNF, aldehyde-functionalized xylan (Xyl-CHO), and allylated gelatin (GelA). The hydrogel network was constructed via dynamic Schiff base bonding between Xyl-CHO and gelatin amines together with photo-triggered thiol–ene click crosslinking of GelA, while CNFs served as a reinforcing nanofibrillar scaffold. The synergistic interactions between covalent crosslinks, dynamic bonds, and nanofiber entanglement enabled effective regulation of the hydrogel microstructure and mechanical properties. By tuning the Xyl-CHO content, the pore structure, swelling behavior, and crosslinking density of the hydrogels could be precisely controlled, resulting in a significant improvement in compressive strength and modulus. Rheological measurements revealed pronounced shear-thinning behavior and rapid structural recovery, allowing stable extrusion and high-fidelity fabrication of complex structures via direct ink writing 3D printing. Using levofloxacin as a model compound, the hydrogels exhibited tunable release profiles governed by the interplay between network crosslinking density and matrix swelling. The results demonstrate that the GelA/CNF/Xyl-CHO system provides a versatile platform for designing sustainable, structurally tunable hydrogel materials with excellent printability and controllable release behavior.
| Original language | English |
|---|---|
| Article number | 123922 |
| Number of pages | 10 |
| Journal | Industrial Crops and Products |
| Volume | 250 |
| DOIs | |
| Publication status | Published - Aug 2026 |
| MoE publication type | A1 Journal article-refereed |
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