Physically cross-linked cellulose nanofiber (LCNF/CNF) hydrogels: impact of the composition on mechanical and swelling properties

被引:0
|
作者
Baraka, Farida [1 ]
Morales, Amaia [1 ]
Velazco-Cabral, Ivan [2 ]
Rivilla, Ivan [3 ,4 ,5 ,6 ]
Labidi, Jalel [1 ]
机构
[1] Univ Basque Country UPV EHU, Engn Fac Gipuzkoa, Chem & Environm Engn Dept, Biorefinery Proc Res Grp, Plaza Europa 1, San Sebastian 20018, Spain
[2] Univ Guanajuato, Dept Quim, Div Ciencias Nat & Exactas, Noria Alta, ,Gto, Guanajuato 36050, Mexico
[3] BERC Basque Excellence Res Ctr, Donostia Int Phys Ctr, Manuel Lardizabal 4, San Sebastian 20018, Spain
[4] Univ Pais Vasco Euskal Herriko Unibertsitatea UPV, Dept Quim Organica 1, San Sebastian 20018, Spain
[5] Univ Pais Vasco Euskal Herriko Unibertsitatea UPV, Fac Quim Kimika Fak, Ctr Innovac & Quim Avanzada ORFEO CINQA, San Sebastian 20018, Spain
[6] Ikerbasque, Basque Fdn Sci, Bilbao 48009, Spain
关键词
Cellulose nanofibers; Lignocellulose nanofibers; Hydrogel; Physical cross-linking; DFT; AEROGELS;
D O I
10.1007/s42114-025-01218-z
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Lignocellulose nanofibers (LCNFs) are highly regarded for their ability to significantly enhance the rigidity of formed structures. When integrated into cellulose nanofiber (CNF) hydrogels, they hold substantial promise in augmenting mechanical strength, as well as improving adsorption capacity. Herein, the preparation of hydrogels from an aqueous suspension of CNFs and LCNFs extracted from eucalyptus cellulose pulp through a homogenization process is outlined. Suspensions of different concentrations were prepared to assess the influence of lignin and nanofiber content on the properties of the hydrogels. The hydrogels cellulose nanofibers (HCNF) and lignocellulose nanofibers (HLCNF) were formed through a freeze-thaw process, revealing an enhancement in rigidity with increasing nanofiber concentration. DFT (density functional theory) calculations illustrated the cross-linking mechanism between cellulose chains induced by the crystallization of water molecules, thus, corroborating the postulated hydrogel formation mechanism. Microstructural analysis revealed honeycomb-shaped matrices in longitudinal sections, with HLCNF hydrogels presenting less smooth walls. Studies on water adsorption capacity showed rapid swelling in both hydrogels, correlated with the nanofiber content reaching 8750% and 5500% for HLCNF and HCNF, respectively. HLCNF hydrogels exhibited higher adsorption capacity due to the influence of lignin on cross-linking rates. Mechanical compression tests demonstrated exceptional resilience in all hydrogels. Despite having a lower cross-linking density compared to hydrogels made from 2 wt.% cellulose nanofibers, hydrogels composed of 2 wt.% lignocellulose nanofibers exhibited a Young's modulus of 2.83 kPa. This underscores the superior mechanical properties of lignin-based hydrogels, highlighting the effect of lignin on the hydrogel matrix.
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页数:11
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