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◆ Science Advances2025-12-05· Thermoelectric materials

Forced bond ionization–driven design of ultralow lattice thermal conductivity materials for flexible thermoelectrics

Shunda Yang, Lan Li, Chensheng Lin, Jia Wan, Yue Lin, Min Luo

原始摘要(英文原文)· Original abstract
The search for development strategies that yield low κ lat has become the focus of thermoelectrics and barrier coatings. Here, we propose a “forced bond ionization” strategy by integrating conflicting coordination environments (planar three coordination versus tetrahedral four coordination of Cu) to form pseudo-tetrahedral structures. This approach induces partial ionization of Cu─I bonds in Cu 5 TeS 3 I 3 (CTSI), yielding a record-low κ lat of 0.17 W/(m·K) for dense inorganic polycrystals. The pseudo-tetrahedral configuration triggers shear modes, markedly reducing the transverse speed of sound (ν T = 839 m/s) and amplifying anharmonicity (Grüneisen parameter γ = 2.76). Theoretical analysis reveals that coordination preference competition provides Cu atoms a metastable site, promoting the disordered behavior. The corresponding vibrations of I atoms and disordered Cu atoms dominate the phonon scattering while the material having remarkable flexibility and certain thermoelectric potential. This work establishes a bond ionization–driven design paradigm for ultralow κ lat materials, marking a leap toward potential flexible thermoelectric applications.
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Forced bond ionization–driven design of ultralow lattice thermal conductivity materials for flexible thermoelectrics — 科研速览 Science Skim