Department of Chemistry, Hue University of Sciences, Hue University, 77 Nguyen Hue, Hue City, Vietnam.
Soft Matter. 2017 Oct 18;13(40):7292-7299. doi: 10.1039/c7sm01292f.
Bioinspired materials have aroused great interest as their inherent biocompatible and structural characteristics have given rise to sustainable applications. In this work, we have reported the phase and morphology transformation of chitosan from crystalline nanofibrils into amorphous sheets for fabricating sustainable materials. Acetylation-induced aqueous dissolution of native chitosan nanofibrils affords water-soluble chitosan as a biopolymeric liquid. Water-soluble chitosan macromolecules self-aggregate into amorphous sheets on solidification, presenting an interesting way to inspire new structures of chitosan assemblies. Through control over gelation, lyophilization, and self-assembled confinement of water-soluble chitosan, we have fabricated novel chitosan materials including filaments, aerogels, microspheres, and plastics that are promising for sustainable use.
受生物启发的材料因其固有生物相容性和结构特性而引起了极大的兴趣,为可持续应用提供了可能。在这项工作中,我们报告了壳聚糖从结晶纳米纤维到无定形片的相和形态转变,用于制造可持续材料。乙酰化诱导的天然壳聚糖纳米纤维的水相溶解提供了水溶性壳聚糖作为生物聚合物液体。水溶性壳聚糖大分子在凝固时自组装成无定形片,为壳聚糖组装体的新结构提供了一种有趣的灵感。通过控制水凝胶的凝胶化、冷冻干燥和自组装限制,我们已经制备了包括纤维、气凝胶、微球和塑料在内的新型壳聚糖材料,这些材料有望实现可持续利用。