Tuning Array Morphology for High‐Strength Carbon‐Nanotube Fibers
- 28 December 2009
- Vol. 6 (1), 132-137
- https://doi.org/10.1002/smll.200900954
Abstract
Vertically aligned carbon-nanotube arrays are synthesized by chemical vapor deposition. Carbon-nanotube fibers are directly spun from the obtained nanotube arrays and then tested mechanically. A strong correlation between the array morphologies and the mechanical properties of the fibers is observed: well-aligned arrays yield fibers with much higher performance, while wavy and entangled arrays give poor fiber properties. More importantly, such array morphologies could be controlled by introducing hydrogen or oxygen during the nanotube synthesis. By simply switching the growth condition from 150 ppm oxygen addition to 2% hydrogen addition, the nanotube array changes from the wavy morphology to the well-aligned morphology, and correspondingly the tensile strength of the resultant fibers could be increased by 4.5 times, from 0.29 GPa for the fibers spun from the oxygen-assistance-grown nanotube arrays to 1.3 GPa for the fibers spun from the hydrogen-assistance-grown nanotube arrays. The detailed effects of hydrogen and oxygen on the nanotube growth, especially on the growth rate and the array spinnability, are extensively studied. The formation mechanism of the different morphologies of the nanotube arrays and the failure mechanism of the nanotube fibers are also discussed in detail.Keywords
This publication has 33 references indexed in Scilit:
- Carbon nanotube-based neat fibersNano Today, 2008
- Making Strong FibersScience, 2008
- Carbon Nanotubes--the Route Toward ApplicationsScience, 2002
- Direct mechanical measurement of the tensile strength and elastic modulus of multiwalled carbon nanotubesMaterials Science and Engineering: A, 2002
- Direct Synthesis of Long Single-Walled Carbon Nanotube StrandsScience, 2002
- Tensile Loading of Ropes of Single Wall Carbon Nanotubes and their Mechanical PropertiesPhysical Review Letters, 2000
- Nanotube Molecular Wires as Chemical SensorsScience, 2000
- Strength and Breaking Mechanism of Multiwalled Carbon Nanotubes Under Tensile LoadScience, 2000
- Nanotube NanodeviceScience, 1997
- Helical microtubules of graphitic carbonNature, 1991