An In-depth Analysis of the Mechanical, Electrical, and Drug Release Properties of Gelatin–Starch Phase-Separated Hydrogels

自愈水凝胶 淀粉 明胶 化学工程 结晶度 材料科学 混溶性 糯玉米 化学 高分子化学 聚合物 有机化学 复合材料 工程类
作者
Sarada Prasanna Mallick,Gauri Shankar Shaw,K. Uvanesh,Dipti Biswal,Suraj Kumar Nayak,Sai Sateesh Sagiri,Vinay K. Singh,Mrinal Bhattacharya,Arfat Anis,Kunal Pal
出处
期刊:Polymer-plastics Technology and Engineering [Marcel Dekker]
卷期号:55 (16): 1731-1742 被引量:4
标识
DOI:10.1080/03602559.2016.1171873
摘要

Gelatin–starch-based phase-separated hydrogels were prepared in this study. Corn starch, soluble starch, and hydrated starch were used as the representative starches for the preparation of the hydrogels. Bright field microscopy suggested the formation of phase-separated hydrogels. An increase in the hydrophilic nature of the starch molecules resulted in decrease in the agglomeration of the starch particles within the gelatin matrices. Fourier transform infrared study confirmed the presence of starch particles within the hydrogels. X-ray diffraction studies suggested that the higher degree of crystallinity of corn starch and soluble starch was responsible for the comparative hydrophobic nature of these starch particles. Hydrated starch was found to be amorphous in nature and can be explained by the destruction of the intramolecular associative forces. Stress relaxation and creep recovery studies indicated predominant elastic nature of the hydrogels. Hydrated starch-containing hydrogels were firmer than corn starch and soluble starch because of the better miscibility of the hydrated starch particles within the gelatin matrices. The bulk resistance of the starch-containing hydrogels was higher. This was because of the capability of the starch particles to behave as dielectric medium. Incorporation of starch particles within the gelatin matrix was found to increase the polymer relaxation-mediated drug diffusion. Metronidazole-loaded hydrogels were found to have good antimicrobial activity.
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