纺织学报 ›› 2026, Vol. 47 ›› Issue (03): 118-128.doi: 10.13475/j.fzxb.20250902201
郭一铭1,2, 喻爽1,2, 赵帆1,2(
), 王富军1,2
GUO Yiming1,2, YU Shuang1,2, ZHAO Fan1,2(
), WANG Fujun1,2
摘要:
为解决现有血管疾病术后监测方法如血管造影、核磁共振等需要大型设备且繁琐操作、缺乏持续监测方法的问题,采用左旋聚乳酸(PLLA)开发了可持续监测血管疾病修复状态的柔性植入式传感器。针对PLLA压电输出性能较低且调控机制尚不明确的问题,通过改变静电纺丝参数和热处理参数系统探究了纤维形貌和分子结构对PLLA纳米纤维膜压电性的影响规律。结果表明:纤维形貌和结晶度都会影响PLLA纳米纤维膜的压电输出性能;纤维直径越细且无串珠结构的PLLA压电输出性能最好;在纤维形貌良好时,PLLA的输出压电随α相晶型结晶度的提高而增大;纤维膜经热处理后出现α'晶型,提高了其结晶度,但导致压电性能降低;最优参数下PLLA纳米纤维膜的输出电压为2.933 V(87.7 N,1 Hz),电流为766.26 nA,电荷密度为1.95 μC/m2,最大输出功率密度为4.23 mW/m2,且在8.3~186.4 kPa范围内保持优异的线性度。体外血管模拟结果证实,该柔性传感器可有效感知环状脉动应变。
中图分类号:
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