Tunable two-step shape and dimensional changes with temperature of a PNIPAM/CNC hydrogel
Yinghao Xu1, Abdellah Ajji1, Marie-Claude Heuzey1
1CREPEC, Department of Chemical Engineering, Polytechnique Montréal, P. O. Box 6079, Station Centre-Ville, Montreal, Quebec, H3C 3A7, Canada. abdellah.ajji@polymtl.ca.
This study introduces cellulose nanocrystals (CNCs) into poly(N-isopropylacrylamide) (PNIPAM) hydrogels, creating tunable 3D structures. These novel PNIPAM/CNC bilayer hydrogels show promise for tissue engineering applications.
Area of Science:
- Polymer Science
- Biomaterials Science
- Materials Engineering
Background:
- Poly(N-isopropylacrylamide) (PNIPAM) is a thermo-responsive polymer with a transition near 32°C.
- Cellulose nanocrystals (CNCs) are biocompatible and underutilized in PNIPAM-based hydrogel systems.
- The effect of CNCs on temperature-responsive hydrogel behavior, especially in bilayer systems, remains unexplored.
Purpose of the Study:
- To investigate the impact of cellulose nanocrystals (CNCs) on the thermo-responsive properties of PNIPAM hydrogels.
- To fabricate and characterize PNIPAM/CNC bilayer hydrogels capable of forming tunable 3D geometries.
- To explore the potential of these materials in tissue engineering.
Main Methods:
- Preparation of stable, well-dispersed PNIPAM/CNC suspensions with varying CNC concentrations.
- Electrospinning of suspensions into nanofiber membranes followed by UV-induced crosslinking to form hydrogels.
- Fabrication of bilayer hydrogels using PNIPAM/CNC layers with different CNC proportions.
Main Results:
- CNCs significantly constrained hydrogel swelling above 5 wt% but had a negligible effect on contraction.
- Bilayer PNIPAM/CNC hydrogels formed 3D geometries upon initial water contact due to anisotropic swelling.
- The generated 3D geometries were reversible and tunable via the thickness ratio of the bilayer components.
Conclusions:
- PNIPAM/CNC bilayer hydrogels exhibit controllable shape-morphing capabilities driven by temperature-responsive anisotropic swelling.
- The tunable geometry of these hydrogels makes them highly suitable for tissue engineering scaffolds.
- This work expands the application of CNCs in advanced functional hydrogel systems.
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