Department of Textile Engineering Chemistry and Science, North Carolina State University, Campus Box 8301, Raleigh, NC 27695, USA.
Nanoscale. 2015 Oct 28;7(40):16744-54. doi: 10.1039/c5nr02732b.
Stable nanoscale hybrid fabrics containing both polymer nanofibers and separate and distinct carbon nanotubes (CNTs) are highly desirable but very challenging to produce. Here, we report the first instance of such a hybrid fabric, which can be easily tailored to contain 0-100% millimeter long CNTs. The novel CNT - polymer hybrid nonwoven fabrics were created by simultaneously electrospinning nanofibers onto aligned CNT sheets which were drawn and collected on a grounded, rotating mandrel. Due to the unique properties of the CNTs, the hybrids show very high tensile strength, very small pore size, high specific surface area and electrical conductivity. In order to further examine the hybrid fabric properties, they were consolidated under pressure, and also calendered at 70 °C. After calendering, the fabric's strength increased by an order of magnitude due to increased interactions and intermingling with the CNTs. The hybrids are highly efficient as aerosol filters; consolidated hybrid fabrics with a thickness of 20 microns and areal density of only 8 g m(-2) exhibited ultra low particulate (ULPA) filter performance. The flexibility of this nanofabrication method allows for the use of many different polymer systems which provides the opportunity for engineering a wide range of nanoscale hybrid materials with desired functionalities.
稳定的纳米级混合纤维,既包含聚合物纳米纤维,又包含独立而明显的碳纳米管(CNTs),这是非常理想的,但生产起来极具挑战性。在这里,我们首次报告了这样一种混合纤维,它可以很容易地定制,包含 0-100%毫米长的 CNT。新型 CNT-聚合物混合无纺纤维是通过同时将纳米纤维纺到对齐的 CNT 片上而制成的,这些 CNT 片被拉伸并收集在接地的旋转心轴上。由于 CNT 的独特性质,这些混合物表现出非常高的拉伸强度、非常小的孔径、高的比表面积和导电性。为了进一步研究混合纤维的性质,它们在压力下被压实,也在 70°C 下被压光。压光后,由于与 CNT 之间的相互作用和混合增加,织物的强度增加了一个数量级。这些混合物作为气溶胶过滤器非常有效;厚度为 20 微米、面密度仅为 8 克/平方米的压实混合织物表现出超低颗粒物(ULPA)过滤性能。这种纳米纤维制造方法的灵活性允许使用许多不同的聚合物系统,这为工程设计具有所需功能的广泛的纳米级混合材料提供了机会。