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Bioinspired cellulose nanofibril/xylan/gelatin nanocomposite hydrogels with tunable structure for extrusion-based 3D printing and controlled release

  • Hongjie Bi
  • , Yadan Zhao
  • , Zuochao Zhu
  • , Sangzi Zhang
  • , Jian Zhang
  • , Xiaochun Zhang*
  • , Gaoyuan Ye*
  • , Xiaoju Wang*
  • *Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

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 languageEnglish
Article number123922
Number of pages10
JournalIndustrial Crops and Products
Volume250
DOIs
Publication statusPublished - Aug 2026
MoE publication typeA1 Journal article-refereed

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