Haggenmuller R, Zhou W, Fischer J E, Winey K I
Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
J Nanosci Nanotechnol. 2003 Feb-Apr;3(1-2):105-10. doi: 10.1166/jnn.2003.173.
We report the production and characterization of polymer nanocomposites with single-walled carbon nanotubes having improved mechanical properties and exceptional nanotube alignment. High-pressure carbon monoxide nanotubes (HiPco) were efficiently distributed in polystyrene (PS) and polyethylene (PE) with a twin-screw compounder. Nanotube concentrations were 1, 5, 10, and 20 wt% in PE composites and 0.7 wt% in PS composites. PE composites were melt-spun into fibers to achieve highly aligned nanotubes. Polarized Raman spectroscopy shows that the degree of alignment increases with decreasing fiber diameter and decreases with increasing nanotube loading. The orientation distribution function of a 1 wt% HiPco/PE composite had a full width at half-maximum of approximately 5 degrees. The elastic modulus increases up to 450% relative to PE fibers for 20 wt% nanotube loading at an intermediate fiber diameter of 100 microns.
我们报道了具有改善的机械性能和出色的纳米管排列的单壁碳纳米管聚合物纳米复合材料的制备及表征。通过双螺杆混炼机,高压一氧化碳纳米管(HiPco)被有效地分散在聚苯乙烯(PS)和聚乙烯(PE)中。在PE复合材料中纳米管浓度为1%、5%、10%和20%(重量),在PS复合材料中为0.7%(重量)。将PE复合材料熔融纺丝成纤维以获得高度排列的纳米管。偏振拉曼光谱表明,排列程度随纤维直径减小而增加,随纳米管负载量增加而降低。对于1%(重量)的HiPco/PE复合材料,取向分布函数的半高宽约为5度。在中间纤维直径为100微米时,对于20%(重量)的纳米管负载,弹性模量相对于PE纤维增加高达450%。