English

Weak Polar Optical Phonon Scattering Decouples Electron and Phonon Transport in Layered Thermoelectric Materials

Materials Science 2026-04-28 v1

Abstract

High-performance thermoelectric (TE) materials are crucial for efficient waste-heat recovery and solid-state cooling technologies. A persistent challenge in TE materials design arises from the strong interdependence among the electrical conductivity (σ\sigma), Seebeck coefficient (SS), and lattice thermal conductivity (κL\kappa_{\mathrm{L}}). Layered compounds can effectively suppress κL\kappa_{\mathrm{L}} along the cross-plane direction owing to weak interlayer interactions; however, they often suffer from low carrier mobility (μ\mu) caused by limited band dispersion and strong polar optical phonon (POP) scattering. Here, we perform high-throughput density functional theory calculations to screen 236 layered semiconductors and identify candidates with low effective mass (mm^{*}) and weak POP scattering. We identify 23 compounds with high cross-plane μ\mu, among which 14 exhibit large power factors (S2σS^{2}\sigma). Notably, GaGe2_{2}Te stands out with exceptionally high cross-plane σ\sigma and power factor, enabled by a favorable combination of small mm^{*} and a small ionic dielectric constant. Simultaneously, GaGe2_{2}Te exhibits an ultralow cross-plane κL\kappa_{\mathrm{L}} of 0.57~W~m1^{-1}~K1^{-1} at 300~K, originating from weak interlayer bonding and pronounced phonon anharmonicity. These results demonstrate an effective strategy to decouple electron and phonon transport in layered materials by mitigating POP scattering, thereby providing a promising pathway toward high-performance thermoelectric materials.

Keywords

Cite

@article{arxiv.2604.23328,
  title  = {Weak Polar Optical Phonon Scattering Decouples Electron and Phonon Transport in Layered Thermoelectric Materials},
  author = {Zhonghao Xia and Michele Reticcioli and Yateng Wang and Yali Yang and Alessandro Stroppa and Jiangang He},
  journal= {arXiv preprint arXiv:2604.23328},
  year   = {2026}
}