Abstract

The lifetime of phonon modes undergoing three-phonon interactions in single-wall carbon nanotubes has been calculated. The calculations are based upon an approach using Fermi's golden rule and a quasielastic continuum model for the anharmonic potential. In deriving the relaxation-rate equation, the effects of both normal and umklapp processes have been included, and a clear distinction between class 1 and class 2 events is made. Dispersion relations for the phonon modes of a carbon nanotube were obtained from analytic expressions developed by Zhang et al. The lifetime of the lowest two optical modes is found to be comparable to the lifetime of the acoustic modes. The results show that the relaxation rate is dominated by normal processes at low temperatures and umklapp processes at room temperature and above. A linear relationship between the relaxation rate and temperature is obtained for temperatures greater than $200\phantom{\rule{0.3em}{0ex}}\mathrm{K}$. The relaxation-rate contribution decreases (increases) with an increase in the tube radius for normal (umklapp) processes. These results are suggested to have interesting implications for mean-free-path and thermal-conductivity calculations.

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