Advanced Thermoelectric Materials and Devices2D Materials and ApplicationsThermal properties of materials

Yulou Ouyang, Aolei Ma, Guotao Yuan, Pinzhen Jia, Zhen-kun Tang, Zhongwei Zhang, Jie Chen

2026.1.8JOURNAL OF APPLIED PHYSICS

DOI: 10.1063/5.0308349

Abstract

Two-dimensional (2D) lateral superlattice is a promising route to tailor thermoelectric properties, yet the impact of superlattice period length on the modulation of phonon and electronic transport remains insufficiently characterized. Using a monolayer CrS2/CrSe2 superlattice as a model system, we combine density-functional theory with a machine-learning potential to quantify the period-dependent thermoelectric properties. Due to the reduced phonon group velocities and shortened phonon lifetimes, our calculation results reveal that the room-temperature lattice thermal conductivity (κp) of short-period superlattice (SS) and long-period superlattice (LS) structures along the modulation direction is reduced by 71.3% and 82.9%, respectively, compared with that of the pristine CrS2. Moreover, the interface-induced charge redistribution in LS disrupts electronic transport continuity, suppressing electrical conductivity (σ). By contrast, SS retains more extended charge states while maintaining σ with reduced κp. As a result, the ZT value of SS (∼0.39) is higher than that of LS (∼0.21) at 600 K, despite LS having a lower κp. This work emphasizes the importance of co-optimizing phonon and electronic transport in superlattice structures by tuning the superlattice period, providing engineering strategies for designing 2D superlattice thermoelectric materials.

Citation format

OUYANG, Yulou, et al. Effect of superlattice period length on thermoelectric performance: A case study of monolayer crs2, crse2, and crs2/crse2 lateral superlattice. JOURNAL OF APPLIED PHYSICS, 2026, 139(2).