Strong anharmonicity driven wave-like thermal transport and high thermoelectric performance in TlCu 5 Se 3
- Sayantoni Choudhury
- Animesh Bhui
- Prasad V. D. Matukumilli
- Memansa Thapa
- Ajay Soni
- Umesh V. Waghmare
- Kanishka Biswas
2026-08-21
Thermal transport in crystalline solids generally occurs via particle-like phonon propagation. Here, we demonstrate the dominant unusual wave-like phonon transport and high thermoelectric figure-of-merit (zT) of ∼1.42 at 673 K in crystalline TlCu 5 Se 3 due to the strong anharmonicity exerted by confined Cu dynamic disorder and Tl rattling. TlCu 5 Se 3 shows an intrinsic ultralow lattice thermal conductivity of (κ L ) 0.3–0.2 W m −1 K −1 across the temperature range of 294–673 K. Density functional theory calculations and ab-initio molecular dynamics simulations reveal that strong lattice anharmonicity arises due to confined dynamic disorder of the Cu sublattice. The complex knot-like structure with strong anharmonicity reduces phonon lifetime below the Wigner limit, leading to substantial inter-band phonon coupling and a dominant wave-like coherence. By further tuning cationic vacancies to optimize electrical transport, we achieve an enhanced zT of ∼1.7 at 673 K in TlCu 5-x Se 3 (x = 0.03–0.07), demonstrating that confined ion dynamics not only maintains ultralow κ L but also enhances thermoelectric performance without compromising the stability.