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July 26, 1996Science5,555 citations

Crystalline Ropes of Metallic Carbon Nanotubes

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ATAndreas TheßCureVac (Germany)RLRoland LeeMacEwan UniversityPNPavel NikolaevLomonosov Moscow State University

Key Points

  • Synthesize and structurally characterize uniform single-wall carbon nanotubes produced through high-temperature catalytic laser vaporization.
  • Condensed a laser-vaporized carbon-nickel-cobalt mixture at 1200°C to generate single-wall carbon nanotubes.
  • Characterized structural geometry, diameter distribution, and lattice packing using X-ray diffraction and electron microscopy, alongside electrical resistivity measurements at 300 K.
  • Produced single-wall carbon nanotubes with yields exceeding 70%, which self-organized into crystalline ropes containing 100 to 500 tubes in a 2D triangular lattice with a 17 Å lattice constant.
  • Determined nanotube diameters to be 13.8 ± 0.2 Å based on X-ray form factors, exhibiting metallic behavior with a single-rope resistivity of <10⁻⁴ ohm-cm at 300 K.
  • Showed that growth mechanics favor the formation of metallic (10,10) tubes due to trade-offs between graphene curvature strain and open-edge dangling bond stabilization.

Abstract

Fullerene single-wall nanotubes (SWNTs) were produced in yields of more than 70 percent by condensation of a laser-vaporized carbon-nickel-cobalt mixture at 1200degreesC. X-ray diffraction and electron microscopy showed that these SWNTs are nearly uniform in diameter and that they self-organize into "ropes," which consist of 100 to 500 SWNTs in a two-dimensional triangular lattice with a lattice constant of 17 angstroms. The x-ray form factor is consistent with that of uniformly charged cylinders 13.8 +/- 0.2 angstroms in diameter. The ropes were metallic, with a single-rope resistivity of <10(-4) ohm-centimeters at 300 kelvin. The uniformity of SWNT diameter is attributed to the efficient annealing of an initial fullerene tubelet kept open by a few metal atoms; the optimum diameter is determined by competition between the strain energy of curvature of the graphene sheet and the dangling-bond energy of the open edge, where growth occurs. These factors strongly favor the metallic (10,10) tube with C5v symmetry and an open edge stabilized by triple bonds.

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Cite This Study

Theß et al. (1996) studied this question.

synapsesocial.com/papers/6a0e5aae8720ffe3c104307chttps://doi.org/10.1126/science.273.5274.483
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