PVA/PAA纳米纤维膜增强PAM/CS-Mg2+的可黏附导电复合水凝胶的制备及性能

Preparation and Properties of PVA/PAA Nanofibrous Mat-Reinforced PAM/CS-Mg2+ Adhesive and Conductive Composite Hydrogel

  • 摘要: 本文通过紫外光引发原位聚合法构建互穿网络,成功制备以聚乙烯醇/聚丙烯酸(PVA/PAA)静电纺丝纳米纤维膜为增强层的聚丙烯酰胺/壳聚糖(PAM/CS)-Mg2+可黏附导电复合水凝胶。利用共价交联、离子键、配位键及氢键的协同作用,实现了纳米纤维层与水凝胶基质的强韧界面结合,形成稳定的多层结构。该复合水凝胶的综合性能显著提升:拉伸强度达82.3 kPa,较纯水凝胶提高9倍;剥离黏附强度为22.4 kPa;离子电导率约2.0 S/m;应变传感灵敏系数最高为5.76。同时,材料在循环加载与溶胀条件下保持良好结构稳定性,传感信号重复可靠。本研究为设计兼具高强度、强黏附与高灵敏传感的水凝胶材料提供了新思路,所制备材料在柔性电子与生物界面工程中具有应用潜力。

     

    Abstract: In this study, a polyacrylamide/chitosan (PAM/CS) -Mg2+ adhesive and conductive composite hydrogel reinforced with a polyvinyl alcohol/polyacrylic (PAA/PVA) acid electrospun nanofibrous mat was fabricated via UV-initiated in-situ polymerization to construct an interpenetrating network. Through the synergistic effects of covalent cross-linking, ionic bonding, coordination, and hydrogen bonding, robust interfacial integration between the nanofibrous layer and the hydrogel matrix was achieved, forming a stable multilayer structure. The composite hydrogel exhibited significantly improved properties: tensile strength reached 82.3 kPa, 9 times that of the pristine hydrogel; peeling adhesion strength was 22.4 kPa; ionic conductivity was approximately 2.0 S/m; and the maximum gauge factor for strain sensing was 5.76. Furthermore, the material maintained structural stability under cyclic loading and swelling conditions, with repeatable and reliable sensing signals. This work provides a strategy for designing hydrogel materials combining high strength, strong adhesion, and high sensitivity, showing potential for applications in flexible electronics and bio-interface engineering.

     

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