Projects per year
Abstract
(30–50 %) resulted in a decrease in porosity from 83 % to 76 %, attributed to enhanced polymer-nanocrystal interactions that produced denser networks. Despite the reduced porosity, the hydrogels demonstrated high swelling ratios (890–1090 %) due to the high water binding capacity of the hydrogel. Mechanical testing showed that higher CNC concentrations significantly improved compressive strength (27.7–49.5 kPa) and toughness (362–707 kJ/m3), highlighting the enhanced mechanical properties of the hydrogels. Thermal analysis confirmed stability up to 400 ◦C and verified ionic crosslinking with CaCl₂. Additionally, hemolysis tests indicated minimal hemolytic activity, affirming the biocompatibility of the TG/CNC hydrogels. These findings highlight the potential of these hydrogels as advanced materials for 3D-printed scaffolds and injectable hydrogels, offering customizable porosity, superior mechanical strength, thermal stability, and biocompatibility.
| Original language | English |
|---|---|
| Article number | 136182 |
| Journal | International Journal of Biological Macromolecules |
| Volume | 280 |
| Issue number | Part 4 |
| Early online date | 3 Oct 2024 |
| DOIs | |
| Publication status | Published - Nov 2024 |
| MoE publication type | A1 Journal article-refereed |
Funding
This work was a part of the Academy of Finland's Flagship Program (project numbers 318890 and 318891, Competence Center for Materials Bioeconomy, FinnCERES). The authors would also like to acknowledge the funding of the Academy of Finland project number 327248 (ValueBiomat) and project number 327865 (Bioeconomy). This work made use of Aalto University Bioeconomy Facilities.
Keywords
- Cellulose nanocrystals
- Hydrogel
- 3D printing
- Tragacanth gum
Fingerprint
Dive into the research topics of 'Tragacanth gum hydrogels with cellulose nanocrystals: A study on optimizing properties and printability'. Together they form a unique fingerprint.Projects
- 3 Finished
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BIOECONOMY: BIOECONOMY Alliance for excellence in sustainable biomass refining
Seppälä, J. (Principal investigator)
01/01/2020 → 31/12/2023
Project: RCF Research Infrastructure
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VALUEBIOMAT: Bio-oils based polymeric composites; value chain from syntheisis to additive manufacturing
Seppälä, J. (Principal investigator), Baniasadi, H. (Project Member), Äkräs, L. (Project Member), Ranta, A. (Project Member), van Bochove, B. (Project Member), Madani, M. (Project Member), Dienel, K. (Project Member), Teotia, A. (Project Member), Muukka, S. (Project Member), Revitzer, H. (Project Member), Borandeh, S. (Project Member) & Farzan, A. (Project Member)
01/06/2019 → 28/02/2023
Project: Academy of Finland: Strategic research funding
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FinnCERES: Competence Center for the Materials Bioeconomy: A Flagship for our Sustainable Future
Mäkelä, K. (Principal investigator)
01/05/2018 → 31/12/2022
Project: Academy of Finland: Other research funding
Equipment
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Bioeconomy Research Infrastructure
Seppälä, J. (Manager)
School of Chemical EngineeringFacility/equipment: Facility