Department of Materials Science and Engineering, Yonsei University , 134 Shinchon-dong, Seoul, Korea.
ACS Appl Mater Interfaces. 2013 Sep 11;5(17):8766-71. doi: 10.1021/am4026032. Epub 2013 Aug 30.
This paper describes a novel approach for composite nanofiber mats and its application to fabricate a strain sensor. Electrospun poly(4-vinylpyridine) (P4VP) nanofiber mats are micropatterned by a lithographic approach that includes selective oxidation of the nanofibers and removal of unreacted fibers. The P4VP/HAuCl4 complex is converted to P4VP/Au composites by chemical reduction. We investigate the electrical resistivity of the composite mats according to the number of complexation-and-reduction cycles, the thickness of the fiber mats, and the annealing temperatures which control the percolation of the Au nanoparticles in the fiber mats. Nozzle printing of a polymeric solution on the patterned nanofiber mats simply produces an array of strain-sensitive and strain-invariant units. The patterns demonstrate high strain-sensing performance without any mechanical and electrical failure over 200 bending cycles in the strain range of ε<0.17.
本文提出了一种制备复合纳米纤维垫的新方法,并将其应用于应变传感器的制作。通过光刻方法对电纺聚 4-乙烯基吡啶(P4VP)纳米纤维垫进行微图案化处理,该方法包括纳米纤维的选择性氧化和未反应纤维的去除。通过化学还原将 P4VP/HAuCl4 复合物转化为 P4VP/Au 复合材料。我们根据复合-还原循环次数、纤维垫的厚度以及控制纤维垫中 Au 纳米颗粒渗流的退火温度,研究了复合垫的电阻率。在图案化纳米纤维垫上喷涂聚合物溶液,只需简单地制作出一系列对应变敏感且应变不变的单元。在应变范围为 ε<0.17 的情况下,这些图案在 200 多次弯曲循环中表现出良好的应变传感性能,没有任何机械和电气故障。