Thermal conductivity of carbon nanotubes

Теплопроводность углеродных нанотрубок
Jianwei Che, Tahir Çağın, William A. Goddard
2000-06-01

bond order dependent force fieldcarbon nanotubesnanotube defectsthermal conductivitythermal transport
As the sizes of electronic and mechanical devices are decreased to the micron and nanometre level, it becomes particularly important to predict the thermal transport properties of the components. Using molecular level theories, such predictions are particularly important for modelling nano-electronic devices where scaling laws may change substantially but it is most difficult to accurately measure the properties. Hence, using the empirical bond order dependent force field, we have studied here the thermal conductivity of nanotubes' dependence on structure, defects and vacancies. The anisotropic character of the thermal conductivity of the graphite crystal is naturally reflected in the carbon nanotubes. We found that the carbon nanotubes have very high thermal conductivity comparable to diamond crystal and in-plane graphite sheet. In addition, nanotube bundles show very similar properties as graphite crystal in which dramatic difference in thermal conductivities along different crystal axis.
1
Carbon nanotubes exhibit highly anisotropic thermal conductivity, reflecting the anisotropy of graphite.
2
Carbon nanotubes have very high thermal conductivity, comparable to that of diamond and in-plane graphite sheets.
3
Molecular-level simulations using an empirical bond-order-dependent force field evaluate carbon-nanotube thermal conductivity as a function of structure, defects, and vacancies.
4
Nanotube bundles display thermal-transport behavior similar to graphite, with dramatic conductivity differences along different crystal axes.

carbon nanotubes

thermal conductivity and its dependence on nanotube structure, defects, and vacancies, including anisotropy

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Publication Date
2000-06-01
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Authors
Jianwei Che
Tahir Çağın
William A. Goddard
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