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3D Printed Porous Cellulose Nanocomposite Hydrogel Scaffolds
Published on: April 24, 2019
Scalable Fabrication of Porous Cellulose Microparticles with Tunable Crystallinity and Chain Accessibility
Sherwin L Escayo1, Lifei Xi1,2, Teddy Salim1,2
1School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Drive, 639798 Singapore, Singapore.
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Cellulose is a versatile and sustainable biopolymer that can be used to make microparticles for various applications. However, its inherent crystallinity limits the surface access for sorption and functionalization. This study presents a one-step method for tuning the crystallinity and chain accessibility of cellulose microparticles using a reactive spray drying technique. The spray drying parameters (e.g., feed concentration, N2 gas flow rate, and cross-linker dosage) were optimized to produce spherical, porous microparticles with a size distribution ranging from 0.54 to 5.65 μm. Among these parameters, feed concentration and N2 gas flow rate were shown to have the greatest influence on the morphology and internal structure, while cross-linking reduced crystallinity and enhanced chain accessibility. The extent of the enhancement in the chain accessibility was directly linked to the epichlorohydrin cross-linker/glucose monomer (E/G) ratio in the feed solution. As a result, the improved chain accessibility led to greater solvent absorptivity, methylene blue adsorption, and dispersibility of the spray-dried cellulose microparticles compared to those of pristine cellulose. These findings highlight the potential of the method as a simple and scalable approach to producing cellulose microparticles with tunable properties.

