Yu Wu, Ying Chen, Shuming Zeng, Geng Li, Hao Zhang, Liujiang Zhou, Su‐Huai Wei, Chenhan Liu
We propose a novel design principle for achieving ultralow thermal conductivity in crystalline materials via a “heavy–light and soft–stiff” structural motif. By combination of heavy and light atomic species with soft and stiff bonding networks, both particle-like (κ p ) and wave-like (κ 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 κ p, while stiff-bonded light atoms produce sparse high-frequency optical branches that disrupt the coherence and lower κ c . High-throughput screening identifies Tl 4 SiS 4 (κ p = 0.10, κ c = 0.06 W/mK) and Tl 4 GeS 4 (κ p = 0.09, κ 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 κ p –κ c trade-off.