纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 1-8.doi: 10.13475/j.fzxb.20251004001
• 纤维材料 • 下一篇
袁会敏1, 林晓静1, 毛迎1,2(
), 武观1,2, 陈文兴1,2, 吕汪洋1,2
YUAN Huimin1, LIN Xiaojing1, MAO Ying1,2(
), WU Guan1,2, CHEN Wenxing1,2, LÜ Wangyang1,2
摘要:
丝素蛋白(SF)虽然具备优良的生物相容性与细胞亲和性,但是其力学性能(如强度与韧性)在纯态下往往难以满足组织工程支架的长期力学支撑要求。为改善SF纤维的力学性能,拓展其在生物医用纤维领域的应用,结合聚己内酯(PCL)的可生物降解性、优良可纺性和力学强度,以及SF的力学可调控性和良好生物相容性,采用湿法纺丝技术制备了高强高韧的SF基复合纤维,重点探讨了SF与PCL质量比对复合纤维微观结构和力学性能的影响。利用扫描电子显微镜、傅里叶变换红外光谱仪和X射线衍射仪等手段对复合纤维的形貌、结构与性能进行表征。结果表明:所制备的复合纤维直径均匀,为(315.38 ± 3.32) μm,断裂强度达(27.86 ± 0.54) MPa;当PCL质量分数达到20%时,复合纤维的断裂伸长率和韧性相比较于SF纤维分别提高了53.18%和48.43%。PCL的引入有效改善了SF纤维的力学性能,所得复合纤维在延展性和韧性方面均获得显著增强,展现出其在医用缝合线、组织工程支架等生物医用纤维领域良好的应用前景。
中图分类号:
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