Weisenberger M C, Grulke E A, Jacques D, Rantell T, Andrews R
University of Kentucky Center for Applied Energy Research, Lexington, Kentucky 40511, USA.
J Nanosci Nanotechnol. 2003 Dec;3(6):535-9. doi: 10.1166/jnn.2003.239.
The use of multiwall carbon nanotubes (MWNTs) as a reinforcing phase in a polyacrylonitrile (PAN) fiber matrix was investigated with the goal of producing a PAN-derived carbon/MWNT composite fiber with enhanced physical properties. MWNTs were dispersed in a PAN/DMAc (dimethylacetamide) solution and spun into composite fibers containing up to 5 wt.% MWNTs, with the use of a lab-scale dry-jet wet spinline. The spinning process resulted in alignment of the MWNTs parallel with the fiber axis. Three types of chemical vapor deposition (CVD)-derived, high-purity MWNTs were used: as produced, graphitized (heat treated to 2800 degrees C), and NaCN-treated (chemically treated to attach CN groups to the nanotube surface). Tensile tests were performed to measure yield stress/strain, initial modulus, break stress/strain, and energy to yield and energy to break. Significant mechanical property increases were recorded for the composite fibers compared with the control samples with no MWNT reinforcement: break strength +31%, initial modulus +36%, yield strength +46%, energy to yield +80%, and energy to break +83%.
研究了将多壁碳纳米管(MWNTs)用作聚丙烯腈(PAN)纤维基体中的增强相,目的是制备出具有增强物理性能的PAN基碳/MWNT复合纤维。将MWNTs分散在PAN/二甲基乙酰胺(DMAc)溶液中,并使用实验室规模的干喷湿纺丝生产线纺制成含有高达5 wt.% MWNTs的复合纤维。纺丝过程使MWNTs与纤维轴平行排列。使用了三种化学气相沉积(CVD)衍生的高纯度MWNTs:原样、石墨化(热处理至2800摄氏度)和NaCN处理(化学处理以使CN基团附着在纳米管表面)。进行拉伸试验以测量屈服应力/应变、初始模量、断裂应力/应变、屈服能量和断裂能量。与没有MWNT增强的对照样品相比,复合纤维的力学性能有显著提高:断裂强度提高31%,初始模量提高36%,屈服强度提高46%,屈服能量提高80%,断裂能量提高83%。