Thermal conductivity of aligned polymers with kinks

I Igor V. Parshin (Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,) I Igor V. Rubtsov (Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,) A Alexander L. Burin (Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,)

Abstract

The thermal conductivity of aligned polymer molecules can be exceptionally high along the alignment direction due to energy transport through strong covalent bonds. At the same time, it is highly sensitive to molecular conformation, varying by orders of magnitude as a result of gauche kinks. Here, we theoretically investigate phonon transport in kinked polymers by numerically evaluating thermal conductivity and interpreting the results in terms of phonon scattering from randomly distributed kinks. For strongly aligned polymers with restricted deviations from a linear backbone, we find that heat transport becomes superdiffusive at long lengths, with thermal conductivity scaling as κ ∝ L1/3. At shorter lengths, thermal conductivity exhibits non-monotonic behavior: it increases at very short scales due to ballistic transport of almost all phonons, then decreases at intermediate lengths due to the Anderson localization of most phonon modes. These results are consistent with experiments and molecular dynamics simulations, and they elucidate the microscopic mechanisms governing heat transport in polymers.

Article Details

Volume / Issue Vol. 164, Issue 24
Published June 28, 2026
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (3)

I

Igor V. Parshin

Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,

I

Igor V. Rubtsov

Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,

A

Alexander L. Burin

Department of Chemistry, Tulane University , New Orleans, Louisiana 70118,