First-principles investigations on the thermoelectric properties of high-entropy Ca(1-x)/3Sr(1-x)/3Ba(1-x)/3LaxTiO3 (x = 0.1, 0.25, 0.4, 0.55, 0.7) ceramics

Qian Chen, Feng Gao, Baoxing Zhai, Jun He, Jie Xu, Hao Dong

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

A high thermoelectric figure of merit (ZT) is desirable for oxide thermoelectric materials. High entropy is an effective approach for enhancing the electrical conductivity and reducing thermal conductivity of materials used in thermoelectric devices. First-principles calculations are used to investigate the thermoelectric properties of high-entropy Ca(1-x)/3Sr(1-x)/3Ba(1-x)/3LaxTiO3 (x = 0.1, 0.25, 0.4, 0.55, 0.7) ceramics. As La3 + concentrations rises, the lattice distortion leads to an initial decrease followed by an increase in the bandgap and effective mass, which in turn causes the Seebeck coefficient of the high-entropy system to exhibit a similar trend of first decreasing and then increasing. The increase in La3+ content causes changes in the carrier concentration and oxygen vacancy concentration within the high-entropy system, resulting in an initial decline followed by a subsequent rise in electrical conductivity. The competition between the Seebeck coefficient and electrical conductivity shows that the power factor is highest of 0.496 mW/(mK2) (1300 K) at x = 0.1. As the La3+ content increases, the distortion of the lattice structure and the nonharmonic vibration of phonons initially decrease and then slightly increase thermal conductivity. Ca0.15Sr0.15Ba0.15La0.55TiO3 exhibits the lowest thermal conductivity, which can be as low as 1.312 W/(m·K) at 1300 K, along with 1.611 W/(m·K) according to Clark model and 1.641 W/(m·K) according to Cahill model. With elevated power factor and reduced thermal conductivity, the ZT of Ca0.1Sr0.1Ba0.1La0.7TiO3 is the highest of 0.449 (1300 K), and the average ZT can also reach 0.165. As the configuration entropy increases, the ZT gradually decreases. It is demonstrated that high entropy can effectively improve the ZT of the material. However, this does not imply that indiscriminately seeking high configuration entropy has a significant impact on the ZT of the material. This work lays the foundation for reducing the thermal conductivity of SrTiO3-based high-entropy ceramics and improving their thermoelectric properties.

Original languageEnglish
Article number111552
JournalMaterials Today Communications
Volume42
DOIs
StatePublished - Jan 2025

Keywords

  • First-principles calculations
  • High-entropy SrTiO
  • Thermal conductivity
  • Thermoelectric properties
  • ZT

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