English

Phonon coherence and minimum thermal conductivity in disordered superlattice

Materials Science 2025-03-11 v1 Mesoscale and Nanoscale Physics Computational Physics

Abstract

Phonon coherence elucidates the propagation and interaction of phonon quantum states within superlattice, unveiling the wave-like nature and collective behaviors of phonons. Taking MoSe2_2/WSe2_2 lateral heterostructures as a model system, we demonstrate that the intricate interplay between wave-like and particle-like phonons, previously observed in perfect superlattice only, also occurs in disordered superlattice. By employing molecular dynamics simulation based on a highly accurate and efficient machine-learned potential constructed herein, we observe a non-monotonic dependence of the lattice thermal conductivity on the interface density in both perfect and disordered superlattice, with a global minimum occurring at relatively higher interface density for disordered superlattice. The counter-intuitive phonon coherence contribution can be characterized by the lagged self-similarity of the structural sequences in the disordered superlattice. Our findings extend the realm of coherent phonon transport from perfect superlattice to more general structures, which offers more flexibility in tuning thermal transport in superlattices.

Keywords

Cite

@article{arxiv.2410.01311,
  title  = {Phonon coherence and minimum thermal conductivity in disordered superlattice},
  author = {Xin Wu and Zhang Wu and Ting Liang and Zheyong Fan and Jianbin Xu and Masahiro Nomura and Penghua Ying},
  journal= {arXiv preprint arXiv:2410.01311},
  year   = {2025}
}

Comments

10 pages, 6 figures

R2 v1 2026-06-28T19:04:49.300Z