MXenes公司
自愈水凝胶
生物相容性
材料科学
纳米复合材料
聚合物
肿胀 的
纳米技术
化学工程
吸附
脱水
生物降解
壳聚糖
纳米材料
表面改性
多糖
膨胀能力
复合数
组织工程
比表面积
蛋白质吸附
抗压强度
海藻酸钠
脚手架
化学
作者
Katarzyna Suchorowiec,Justyna Kasznik,Anastasiia Stepura,Mária Omastová,K. Pielichowska
出处
期刊:Molecules
[Multidisciplinary Digital Publishing Institute]
日期:2026-01-01
卷期号:31 (1): 148-148
标识
DOI:10.3390/molecules31010148
摘要
MXenes, a new family of two-dimensional transition-metal carbides and nitrides, have attracted significant interest in biomedicine because of their tunable surface groups and multifunctional properties. Hydrogels, with their three-dimensional polymeric networks rich in water, provide excellent biocompatibility and structural similarity to those of biological tissues. Although synthetic polymer–based MXene hydrogels are well studied, polysaccharide-based systems remain underexplored despite their biodegradability and biomedical relevance. In this work, MXene nanosheets were incorporated into a sodium alginate (ALG)–gellan gum (GG) polymeric blend to develop polysaccharide/MXene hydrogels. Two dehydration approaches, conventional drying and freeze-drying were used to evaluate their influence on the characteristics of the composite, including microstructure, surface roughness, compressive behavior, water states, and thermal stability. Conventionally dried polysaccharide/MXene nanocomposites with 1.0% wt. MXene have reduced the swelling ratio by ~60% and the volume change by 40% compared to polysaccharide blend. Freeze-dried polysaccharide/MXene nanocomposite hydrogels developed a porous, interconnected network, making them promising for applications requiring high surface area, such as adsorption and tissue engineering. In contrast, conventionally dried samples formed compact, smooth structures with improved barrier and mechanical performance. These results demonstrate that the dehydration strategy strongly governs the polymer network architecture, water states, and material functionality, offering pathways to tailor hydrogel modified with MXene for specific biomedical applications.
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