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Cooperative Suppression Strategy for Dual Thermal Transport Channels in Crystalline Materials

Materials Science 2025-08-26 v1 Computational Physics

Abstract

We propose a novel design principle for achieving ultralow thermal conductivity in crystalline materials via a "heavy-light and soft-stiff" structural motif. By combining heavy and light atomic species with soft and stiff bonding networks, both particle-like (κp\kappa_p) and wave-like (κc\kappa_c) phonon transport channels are concurrently suppressed. First-principles calculations show that this architecture induces a hierarchical phonon spectrum: soft-bonded heavy atoms generate dense low-frequency modes that enhance scattering and reduce κp\kappa_p, while stiff-bonded light atoms produce sparse high-frequency optical branches that disrupt coherence and lower κc\kappa_c. High-throughput screening identifies Tl4_4SiS4_4 (κp\kappa_p = 0.10, κc\kappa_c = 0.06 W/mK) and Tl4_4GeS4_4 (κp\kappa_p = 0.09, κc\kappa_c = 0.06 W/mK) as representative candidates with strongly suppressed transport in both channels. A minimal 1D triatomic chain model further demonstrates the generality of this mechanism, offering a new paradigm for phonon engineering beyond the conventional κp\kappa_p-κc\kappa_c trade-off.

Keywords

Cite

@article{arxiv.2508.17318,
  title  = {Cooperative Suppression Strategy for Dual Thermal Transport Channels in Crystalline Materials},
  author = {Yu Wu and Ying Chen and Shuming Zeng and Hao Zhang and Liujiang Zhou and Chenhan Liu and Su-Huai Wei},
  journal= {arXiv preprint arXiv:2508.17318},
  year   = {2025}
}