| Literature DB >> 27777398 |
Jingyi Nie1,2, Zhengke Wang1,2, Qiaoling Hu1,2.
Abstract
As one of the most important polysaccharide,Entities:
Year: 2016 PMID: 27777398 PMCID: PMC5078770 DOI: 10.1038/srep36005
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Influence of Cu2+ on CS hydrogel structure.
(a) Schematic illustration of the formation of CS hydrogel; (b) Typical structure of CS hydrogel: oriented fibrous structure; (c) Multi-layered structure in CS hydrogel; (d) The cross section (top panel, native wet state) and longitudinal section (bottom panel, freeze-dried) of copper-CS hydrogels with different molar ratios of Cu2+ and amino group.
Figure 2Microscopic structure of copper-CS hydrogel.
(a) SEM image of freeze-dried CS hydrogel sample; (b–d) SEM images of freeze-dried copper-CS hydrogel samples, (c) corresponds to the marked area in (b), n(Cu2+)/n(-NH2) = 5.0:100; (e) XRD profiles of copper-CS samples with different molar ratios of Cu2+ and amino group; (f) XRD profiles of copper-CS sample prepared by in-situ precipitation and Cu(OH)2-CS sample prepared by mixing, n(Cu)/n(-NH2) = 5.0:100.
Figure 3Morphology of CS-based hydrogel samples in native wet state.
Confocal laser scanning microscopy image of (a) CS hydrogel sample, (b) copper-CS hydrogel sample (n(Cu2+)/n(-NH2) = 5.0:100), and (c) calcium-CS hydrogel sample (n(Ca2+)/n(-NH2) = 40.0:100).
Figure 4Gelation rate and gelation process of Cu2+-CS solution.
(a) Relationship between gel thickness and gelation time with different molar ratios of Cu2+ and amino group, error bars indicate standard errors for n = 3; (b,c) Schematic illustration of gelation process of Cu2+-CS solution: (b) formation of oriented fibrous structure, (c) formation of multi-layered structure.
Figure 5Microscopic structure of calcium-CS hydrogel.
(a–c) SEM images of freeze-dried calcium-CS hydrogel sample; (d) XRD profile of calcium-CS hydrogel sample prepared by in-situ precipitation; (e,f) XRD profiles of calcium salt-CS hydrogel samples transferred after in-situ precipitation: (e) calcite-CS hydrogel sample, and (f) apatite-CS hydrogel sample. n(Ca2+)/n(-NH2) = 40.0:100.
Figure 6Schematic illustration of the typical morphology of copper-CS hydrogel and calcium-CS hydrogel.
(a) Copper-CS hydrogel; (b) Calcium-CS hydrogel.