Composition-Dependent Viscosity and Properties of MCC/CNC Regenerated Cellulose Hydrogels Prepared Using TBAF/DMSO

Although microcrystalline cellulose (MCC) and cellulose nanocrystals (CNCs) possess the same cellulose backbone, it remains unclear whether they have similar effects on solution viscosity behavior in tetrabutylammonium fluoride (TBAF)/dimethyl sulfoxide (DMSO) and the properties of the resulting regenerated hydrogels. This study investigated the composition-dependent viscosity behavior of MCC/CNC solutions in TBAF/DMSO and the properties of the regenerated cellulose hydrogels. At 2.5% cellulose, the MCC solution achieved a maximum viscosity of 8.8 Pa·s at 2.5% TBAF, whereas the CNC solution reached 15.0 Pa·s at 5.5% TBAF. In mixed solutions, increasing the CNC content decelerated the viscosity increase, extending the time required for solution preparation and molding. After water-induced regeneration, the gel strength and cutting strength decreased from 70.8 to 33.6 N·mm and from 55.8 to 6.7 N·mm, respectively, as the formulation shifted from MCC-only to CNC-only. Conversely, the CNC-containing hydrogels exhibited higher optical transmittance than MCC-only hydrogels. Time-resolved photoluminescence measurements suggested composition-dependent local photophysical relaxation. Fourier-transform infrared spectroscopy revealed no formation of new covalent structures, while X-ray diffraction indicated that the regenerated hydrogels were predominantly amorphous. Thermogravimetric analysis revealed composition-dependent thermal degradation. These results demonstrate that controlling the MCC/CNC compositional ratio provides a means of balancing solution processability and regenerated hydrogel properties.

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Publication Details

Journal
Gels
Published
2026-09-28
DOI
https://doi.org/10.3390/gels12100878
Primary Topic
Advanced Cellulose Research Studies
Type
article
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article

Composition-Dependent Viscosity and Properties of MCC/CNC Regenerated Cellulose Hydrogels Prepared Using TBAF/DMSO

Seockmo Ku, Yeongjun Kim, Deokyeong Choe, Mi‐Kyung Park et al.
Gels
Advanced Cellulose Research Studies
article

Composition-Dependent Viscosity and Properties of MCC/CNC Regenerated Cellulose Hydrogels Prepared Using TBAF/DMSO

Seockmo Ku, Yeongjun Kim, Deokyeong Choe, Mi‐Kyung Park, 장은옥, Sae-Byuk Lee, Eun-Sook Lee, Maria Jose Silva Pincay, Dong Hyun Kim, Na Hyeon Kim, Hyosub Kim
article en

Abstract

Although microcrystalline cellulose (MCC) and cellulose nanocrystals (CNCs) possess the same cellulose backbone, it remains unclear whether they have similar effects on solution viscosity behavior in tetrabutylammonium fluoride (TBAF)/dimethyl sulfoxide (DMSO) and the properties of the resulting regenerated hydrogels. This study investigated the composition-dependent viscosity behavior of MCC/CNC solutions in TBAF/DMSO and the properties of the regenerated cellulose hydrogels. At 2.5% cellulose, the MCC solution achieved a maximum viscosity of 8.8 Pa·s at 2.5% TBAF, whereas the CNC solution reached 15.0 Pa·s at 5.5% TBAF. In mixed solutions, increasing the CNC content decelerated the viscosity increase, extending the time required for solution preparation and molding. After water-induced regeneration, the gel strength and cutting strength decreased from 70.8 to 33.6 N·mm and from 55.8 to 6.7 N·mm, respectively, as the formulation shifted from MCC-only to CNC-only. Conversely, the CNC-containing hydrogels exhibited higher optical transmittance than MCC-only hydrogels. Time-resolved photoluminescence measurements suggested composition-dependent local photophysical relaxation. Fourier-transform infrared spectroscopy revealed no formation of new covalent structures, while X-ray diffraction indicated that the regenerated hydrogels were predominantly amorphous. Thermogravimetric analysis revealed composition-dependent thermal degradation. These results demonstrate that controlling the MCC/CNC compositional ratio provides a means of balancing solution processability and regenerated hydrogel properties.

GelsVol. 12(10)
Kyungpook National University (KR), Florida Agricultural and Mechanical University (US), Texas A&M University (US)
Clean water and sanitation
Openalex Percentile: Top 23%
Advanced Cellulose Research Studies
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