细菌纤维素/胶原复合材料的形态和热稳定性

M. Albu, Z. Vuluga, D. Panaitescu, D. Vuluga, A. Casarica, M. Ghiurea
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引用次数: 25

摘要

本文旨在制备细菌纤维素与胶原蛋白的复合材料,研究胶原蛋白对细菌纤维素的形态、力学和热性能的影响,以及细菌纤维素对胶原蛋白热稳定性的影响,为设计具有潜在生物医学应用前景的复合材料提供依据。制备了两个系列的复合材料,第一个系列将BC膜浸泡在胶原凝胶(CG)、胶原溶液(CS)和水解胶原(HC)三种形式的胶原溶液中,然后冷冻干燥;将BC粉末与胶原蛋白(CG, CS和HC)溶液混合,再进行冷冻干燥,制成第二系列复合材料。通过傅里叶变换红外光谱(FTIR)、热重分析(TGA)、力学测试、扫描电镜(SEM)和原子力显微镜(AFM)对复合材料的性能进行了评价。结果表明,BC作为CS基体的热稳定剂,与CG基体协同作用,使复合材料的性能得到改善。另一方面,用胶原蛋白浸渍的BC片材具有显著改善的热稳定性。胶原蛋白(如HC、CS或CG)对冻干BC片材的力学性能也有积极的影响。BC/HC和BC/CG复合材料的模量增加了4倍。BC/CS增加60倍。SEM和AFM分析显示,BC/CS复合材料弹性模量和抗拉强度的显著增加是由于胶原溶液在BC网络中更容易渗透,BC原纤维更容易浸渍。
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Morphology and thermal stability of bacterial cellulose/collagen composites
The aim of this paper was to prepare composites of bacterial cellulose (BC) and collagen to evaluate both the effect of collagen on the morphological, mechanical and thermal properties of BC and the effect of BC on the thermal stability of collagen for designing composites with increased potential biomedical applications. Two series of composites were prepared, the first series by immersing BC pellicle in solutions of collagen obtained in three forms, collagen gel (CG), collagen solution (CS) and hydrolysed collagen (HC), followed by freeze drying; and the second series of composites by mixing BC powder in solutions of collagen (CG, CS and HC), also followed by freeze drying. The properties of obtained composites were evaluated by Fourier transform infrared (FTIR) spectroscopy, thermogravimetric analysis (TGA), mechanical tests, scanning electron microscopy (SEM) and atomic force microscopy (AFM). The results revealed that BC acts as a thermal stabilizer for CS matrix, while with CG matrix it interacts synergistically leading to composites with improved properties. On the other hand, the BC sheet impregnated with collagen has a significantly improved thermal stability. Collagen (as HC, CS or CG) has also a positive influence on the mechanical properties of lyophilized BC sheet. A four times increase of modulus was observed in BC/HC and BC/CG composites. and an increase of 60 times for BC/CS. The spectacular increase of elastic modulus and tensile strength in the case of BC/CS composite was explained by the easier penetration of collagen solution in the BC network and impregnation of BC fibrils as revealed by SEM and AFM analyzes.
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