| Literature DB >> 35012233 |
Shuai Zhang1,2, Yu Wan1,3, Weijie Yuan1,2, Yaoxiang Zhang1,2, Ziyuan Zhou1,2, Min Zhang1,3, Luzhen Wang4, Ran Wang1,2.
Abstract
Hydrogels are highly hydrophilic polymers that have been used in a wide range of applications. In this study, we prepared PVA-CS/SA-Ca2+ core-shell hydrogels with bilayer space by cross-linking PVA and CS to form a core structure and chelating SA and Ca2+ to form a shell structure to achieve multiple substance loading and multifunctional expression. The morphology and structure of core-shell hydrogels were characterized by scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR). The factors affecting the swelling properties of the hydrogel were studied. The results show that the PVA-CS/SA-Ca2+ hydrogel has obvious core and shell structures. The SA concentration and SA/Ca2+ cross-linking time show a positive correlation with the thickness of the shell structure; the PVA/CS mass ratio affects the structural characteristics of the core structure; and a higher CS content indicates the more obvious three-dimensional network structure of the hydrogel. The optimal experimental conditions for the swelling degree of the core-shell hydrogel were an SA concentration of 5%; an SA/Ca2+ cross-linking time of 90 min; a PVA/CS mass ratio of 1:0.7; and a maximum swelling degree of 50 g/g.Entities:
Keywords: core–shell structure; double load; hydrogel; response surface
Year: 2022 PMID: 35012233 PMCID: PMC8747294 DOI: 10.3390/polym14010212
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Preparation of PVA–CS/SA–Ca2+ core–shell hydrogel.
Reaction conditions of PVA–CS/SA–Ca2+ core–shell hydrogels.
| Sample | PVA/mL | CS/mL | SA/% | SA/Ca2+ Cross-Linking Time/min |
|---|---|---|---|---|
| 1 | 10 | 20 | 4 | 30 |
| 2 | 10 | 20 | 4 | 60 |
| 3 | 10 | 20 | 4 | 90 |
| 4 | 10 | 20 | 2 | 30 |
| 5 | 10 | 20 | 6 | 30 |
| 6 | 10 | 15 | 4 | 30 |
| 7 | 10 | 25 | 4 | 30 |
Figure 2SEM photograph of PVA–CS/SA–Ca2+ core–shell hydrogel ((A–C) are core–shell hydrogels with 4% SA, PVA/CS = 1:0.8, and SA/Ca2+ cross-linking time of 30 min; (D–F) are core–shell hydrogels with 4% SA, PVA/CS = 1:0.8, and SA/Ca2+ cross-linking time of 30 min, 60 min and 90 min; (G–I) are core–shell hydrogels with PVA/CS = 1:0.8, SA/Ca2+ cross-linking time of 30 min, and SA concentrations of 2%, 4% and 6%, respectively; (J–L) are core–shell hydrogels with 4% SA, SA/Ca2+ cross-linking time of 30 min, and PVA/CS of 1:0.6, 1:0.8 and 1:1).
Figure 3FTIR spectra of PVA–CS/SA–Ca2+ core–shell hydrogel and its raw materials: (a) shows the FTIR spectra of PVA/CS nuclear structure and its raw materials PVA and CS; (b) shows the FTIR spectra of SA/Ca2+ shell structure and its raw material SA.
Figure 4Effect of SA concentration on the swelling degree of PVA–CS/SA–Ca2+ core–shell hydrogel.
Figure 5Effect of SA/Ca2+ cross-linking time on the swelling degree of PVA–CS/SA–Ca2+ core–shell hydrogel.
Figure 6Effect of the PVA/CS ratio on the swelling degree of PVA–CS/SA–Ca2+ core–shell hydrogel.
Factors and levels for Box–Behnken design.
| Level | SA Concentration | SA/Ca2+ Cross-Linking Time | PVA/CS |
|---|---|---|---|
| 1 | 5 | 60 | 1:0.7 |
| 2 | 6 | 90 | 1:0.8 |
| 3 | 7 | 120 | 1:0.9 |
Analysis of variance for quadric regression model.
| Variation Source | Sum of Squares | Freedom | Mean Square | F Value | Significance | |
|---|---|---|---|---|---|---|
| Model | 1414.60 | 9 | 157.18 | 40.20 | <0.0001 | ** |
| A | 131.263 | 1 | 131.23 | 33.56 | 0.0007 | ** |
| B | 222.81 | 1 | 222.81 | 56.98 | 0.0001 | ** |
| C | 166.01 | 1 | 166.01 | 42.45 | 0.0003 | ** |
| AB | 352.96 | 1 | 352.96 | 0.40 | 0.5460 | |
| AC | 24.86 | 1 | 24.86 | 6.36 | 0.0397 | * |
| BC | 1.57 | 1 | 1.57 | 90.26 | <0.0001 | ** |
| A2 | 0.24 | 1 | 0.24 | 0.061 | 0.8125 | |
| B2 | 7.32 | 1 | 7.32 | 1.87 | 0.2136 | |
| C2 | 499.24 | 1 | 499.24 | 127.67 | <0.0001 | ** |
| Residual | 27.37 | 7 | 3.91 | |||
| Spurious term | 27.37 | 3 | 9.12 | |||
| Pure error | 0.00 | 4 | 0.00 | |||
| Total value | 1441.98 | 16 | ||||
| Model determination coefficient | R2 = 0.9810 | |||||
| Model adjustment determination Coefficient | R2adj = 0.9566 | |||||
Note: ** indicates highly significant (p < 0.01); * indicates significant (p < 0.05).
Figure 7Contour (a) and 3D plot (b) of SA concentration versus SA/Ca2+ cross-linking time interaction versus response value SR.
Figure 8Contour (a) and 3D plot (b) of SA concentration versus PVA/CS addition ratio interaction versus response value SR.
Figure 9Contour (a) and 3D plot (b) of SA/Ca2+ cross-linking time versus PVA/CS addition ratio interaction versus response value SR.