Fabrication and Characterization of Hydrogels From NaOH ‐Dissolved Lignocellulose and Carboxymethyl Cellulose

ABSTRACT Carboxymethyl cellulose (CMC) has been developed as a renewable material for highly absorbent hydrogels, but excessive swelling and insufficient network stability have limited its practical applications. Here, organosolv bamboo pulp containing approximately 20 wt% residual lignin was directly dissolved in aqueous sodium hydroxide (NaOH) and incorporated into CMC hydrogels without the need for cellulose purification or nanofibrillation. Composite hydrogels with different CMC/lignocellulose ratios were subsequently fabricated through epichlorohydrin crosslinking. The resulting hydrogels had high gel fractions of 88%–91%, while their water absorption ranged from 73 to 172 g/g. Rheological analysis revealed that increasing the lignocellulose content enhanced the initial network stiffness, whereas the 1:1 CMC/lignocellulose formulation exhibited the greatest resistance to deformation, reaching a maximum stress of 513 Pa at a strain of approximately 4990%. After swelling, the lignocellulose‐rich hydrogels retained a higher storage modulus, confirming the contribution of lignocellulose to network stability. Thermal analysis further showed that the maximum decomposition temperature increased from 295°C for LC‐25 to 348°C for LC‐100. Collectively, these results demonstrate that incorporating NaOH‐dissolved lignocellulose can improve the network stability of CMC hydrogels while preserving their high water‐absorption capacity.

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Publication Details

Journal
Polymer Engineering and Science
Published
2026-09-22
DOI
https://doi.org/10.1002/pen.70895
Primary Topic
Advanced Cellulose Research Studies
Type
article
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article

Fabrication and Characterization of Hydrogels From NaOH ‐Dissolved Lignocellulose and Carboxymethyl Cellulose

Jung Myoung Lee, Jae Yong Lee, Sa Rang Choi, Si Heon Kim et al.
Polymer Engineering and Science
Advanced Cellulose Research Studies
article

Fabrication and Characterization of Hydrogels From NaOH ‐Dissolved Lignocellulose and Carboxymethyl Cellulose

Jung Myoung Lee, Jae Yong Lee, Sa Rang Choi, Si Heon Kim, Seo Hu Kim, Jun Seo Seo, Jin Ho Kim
article en

Abstract

ABSTRACT Carboxymethyl cellulose (CMC) has been developed as a renewable material for highly absorbent hydrogels, but excessive swelling and insufficient network stability have limited its practical applications. Here, organosolv bamboo pulp containing approximately 20 wt% residual lignin was directly dissolved in aqueous sodium hydroxide (NaOH) and incorporated into CMC hydrogels without the need for cellulose purification or nanofibrillation. Composite hydrogels with different CMC/lignocellulose ratios were subsequently fabricated through epichlorohydrin crosslinking. The resulting hydrogels had high gel fractions of 88%–91%, while their water absorption ranged from 73 to 172 g/g. Rheological analysis revealed that increasing the lignocellulose content enhanced the initial network stiffness, whereas the 1:1 CMC/lignocellulose formulation exhibited the greatest resistance to deformation, reaching a maximum stress of 513 Pa at a strain of approximately 4990%. After swelling, the lignocellulose‐rich hydrogels retained a higher storage modulus, confirming the contribution of lignocellulose to network stability. Thermal analysis further showed that the maximum decomposition temperature increased from 295°C for LC‐25 to 348°C for LC‐100. Collectively, these results demonstrate that incorporating NaOH‐dissolved lignocellulose can improve the network stability of CMC hydrogels while preserving their high water‐absorption capacity.

Polymer Engineering and Science
Daegu Health College (KR), Kyungpook National University (KR), Taegu Science University (KR), Daegu University (KR)
Clean water and sanitation
Openalex Percentile: Top 22%
Advanced Cellulose Research Studies
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Fabrication and Characterization of Hydrogels From NaOH ‐Dissolved Lignocellulose and Carboxymethyl Cellulose — Jung Myoung Lee, Jae Yong Lee, et al. · Polymer Engineering and Science (2026) | TGRS Research Map | TGRS