Phonon transmission through defects in carbon nanotubes from first principles
Abstract
We compute the effect of different isolated defects on the phonon transmission through carbon nanotubes, using an ab initio density functional approach. The problem of translational and rotational invariance fulfillment in the nonperiodic system is solved via a Lagrange-multiplier symmetrization technique. The need for an ab initio approach is illustrated for the case of phonon transmission through a nitrogen substitutional impurity, for which no reliable empirical interatomic potentials exist. This opens an avenue for the accurate parameter-free study of phonon transport through general systems with arbitrary composition and structure, without any need for semiempirical potential descriptions.
- Publication:
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Physical Review B
- Pub Date:
- January 2008
- DOI:
- Bibcode:
- 2008PhRvB..77c3418M
- Keywords:
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- 68.65.-k;
- 63.22.-m;
- 65.80.+n;
- 71.15.Mb;
- Low-dimensional mesoscopic and nanoscale systems: structure and nonelectronic properties;
- Phonons or vibrational states in low-dimensional structures and nanoscale materials;
- Thermal properties of small particles nanocrystals and nanotubes;
- Density functional theory local density approximation gradient and other corrections