Reducing the thermal conductivity of carbon nanotubes below the random isotope limit
arXiv:0908.3958 · doi:10.1103/PhysRevB.80.113408
Abstract
We find that introducing segmented isotopic disorder patterns may considerably reduce the thermal conductivity of pristine carbon nanotubes below the uncorrelated disorder value. This is a result of the interplay between different length scales in the phonon scattering process. We use ab-initio atomistic Green's function calculations to quantify the effect of various types of segmentation similar to that experimentally produced by coalescence of isotope-engineered fullerenes.
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