Evaluation of the factors influencing the resultant diameter of the electrospun gelatin/sodium alginate nanofibers via Box–Behnken design
This article presented a study on the effects of solution properties (i.e., gelatin concentration, alginate concentration, content of alginate solution in the blend solution, and content of acetic acid in the solvent of gelatin solution) on the average diameter of electrospun gelatin/sodium alginate...
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Veröffentlicht in: | Materials Science & Engineering C 2016-01, Vol.58, p.709-723 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | This article presented a study on the effects of solution properties (i.e., gelatin concentration, alginate concentration, content of alginate solution in the blend solution, and content of acetic acid in the solvent of gelatin solution) on the average diameter of electrospun gelatin/sodium alginate nanofibers, as well as its standard deviation. For this purpose, blend solutions of two natural polymers (gelatin and sodium alginate) were prepared both in the absence and presence of ethanol. Response surface methodology based on a three-level, four-variable Box–Benkhen design was employed to define quadratic relationships between the responses and the solution properties. The individual and interactive effects of the solution properties were determined. Moreover, the adequacy of the models was verified by the validation experiments. Results showed that the average diameters of the resultant nanofibers were 68–166nm and 90–155nm in the absence and presence of ethanol, respectively. The experimental results were in good agreement with the predicted response values. Hence, this study provides an overview on the fabrication of gelatin/sodium alginate nanofibers with targeted diameter, which may have potential to be used in the field of tissue engineering.
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•A tool for producing nanofibers with targeted fiber diameter was developed.•A three-level, four-variable Box–Behnken design technique was used.•The individual and the interactive effects of the parameters were determined.•Quadratic models were successfully obtained.•The accuracy of the models was validated. |
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ISSN: | 0928-4931 1873-0191 |
DOI: | 10.1016/j.msec.2015.09.024 |