Department of Aeronautics and Astronautics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
ACS Appl Mater Interfaces. 2013 Jun 12;5(11):4892-903. doi: 10.1021/am4006385. Epub 2013 May 15.
Hierarchical carbon fibers (CFs) sheathed with radial arrays of carbon nanotubes (CNTs) are promising candidates for improving the intra- and interlaminar properties of advanced fiber-reinforced composites (e.g., graphite/epoxy) and for high-surface-area electrodes for battery and supercapacitor architectures. While CVD growth of CNTs on CFs has been previously shown to improve the apparent shear strength between fibers and polymer matrices (up to 60%), this has to date been achieved only at the expense of significant reductions in tensile strength (30-50%) and stiffness (10-20%) of the underlying fiber. Here we demonstrate two approaches for growing aligned and unaligned CNTs on CFs that enable preservation of fiber strength and stiffness. We observe that CVD-induced reduction of fiber strength and stiffness is primarily attributable to mechanochemical reorganization of the underlying fiber when heated untensioned above ~550 °C in both hydrocarbon-containing and inert atmospheres. We show that tensioning fibers to ≥12% of tensile strength during CVD enables aligned CNT growth while simultaneously preserving fiber strength and stiffness even at growth temperatures >700 °C. We also show that CNT growth employing CO2/acetylene at 480 °C without tensioning-below the identified critical strength-loss temperature-preserves fiber strength. These results highlight previously unidentified mechanisms underlying synthesis of hierarchical CFs and demonstrate scalable, facile methods for doing so.
具有径向碳纳米管(CNT)阵列的分层碳纤维(CF)是提高先进纤维增强复合材料(例如石墨/环氧)的层内和层间性能以及用于电池和超级电容器结构的高表面积电极的有前途的候选材料。虽然之前已经证明 CVD 生长 CNT 可以提高纤维和聚合物基体之间的表观剪切强度(高达 60%),但迄今为止,这仅以显著降低纤维的拉伸强度(30-50%)和刚度(10-20%)为代价。在这里,我们展示了两种在 CF 上生长对齐和未对齐 CNT 的方法,这些方法能够保持纤维的强度和刚度。我们观察到,在含碳氢化合物和惰性气氛中加热至~550°C 以上时,未拉伸的纤维会发生机械化学重组,这是导致 CVD 引起的纤维强度和刚度降低的主要原因。我们表明,在 CVD 过程中对纤维进行拉伸至大于纤维拉伸强度的 12%,可以在保持纤维强度和刚度的同时实现 CNT 的对齐生长,即使在高于 700°C 的生长温度下也是如此。我们还表明,在低于确定的临界强度损失温度 480°C 下使用 CO2/乙炔进行 CNT 生长而不进行拉伸,也可以保持纤维强度。这些结果突出了分层 CF 合成的以前未识别的机制,并展示了可扩展的、简便的方法。