纺织学报 ›› 2026, Vol. 47 ›› Issue (05): 56-64.doi: 10.13475/j.fzxb.20250801901
GUI Zhenyu1, LAN Ping1(
), YANG Xiaoda1, CHEN Hao2, ZHUANG Jing2
摘要:
为开发高效、安全的血液净化材料以解决肌酐等尿毒症毒素清除的难题,采用3-氨基丙基三乙氧基硅烷(APTES)桥联与酰胺化反应,将肝素共价接枝于铜基金属有机框架材料(CuMOFs)表面,制得肝素化CuMOFs(CuMOFs-Hep);进而通过静电纺丝技术,将其与聚乙烯醇(PVA)复合,制备了CuMOFs-Hep/PVA复合纤维膜。系统表征证实材料成功合成与功能化,肝素功能化使材料表面Zeta电位降至-30.1 mV。吸附性能测试表明,CuMOFs-Hep对肌酐的最大理论吸附容量达267.8 mg/g,较原始CuMOFs(158.7 mg/g)提升68.7%;所得CuMOFs-Hep/PVA复合纤维膜保持了233.5 mg/g的高吸附容量,同时具备良好可加工性。吸附机制分析表明,高效吸附源于肝素化的强静电作用与氢键协同,且静电纺丝纳米纤维结构在有效传质与维持活性位点可及性之间取得了良好平衡。生物安全性分析表明,肝素化使Cu2+溶出浓度降低89.9%,并改善抗血小板黏附性能。通过材料功能化与静电纺丝相结合的策略,成功制备出一种兼具高吸附性、易加工性与良好生物安全性的复合纤维膜,为高性能血液净化材料的开发提供了新思路。
中图分类号:
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