First principles study of thermoelectric properties of $\text{Nb}_2\text{Co}_2\text{InSb}$ and $\text{Nb}_2\text{Co}_2\text{GaSb}$ double half-Heuslers
Rajeev Ranjan

TL;DR
This study uses first principles calculations to analyze thermoelectric properties of Nb2Co2InSb and Nb2Co2GaSb double half-Heuslers, showing reduced thermal conductivity and potential for high-temperature thermoelectric applications.
Contribution
It provides a detailed computational analysis of thermoelectric properties and thermal conductivity reduction in these double half-Heusler compounds, highlighting their potential.
Findings
Lattice thermal conductivity significantly lower than parent NbCoSn.
Ordered phase stable for Nb2Co2InSb, SQS favored for Nb2Co2GaSb.
Thermal conductivity values range from 4.7 to 6.9 W/mK at room temperature.
Abstract
Valence electron count (VEC) 18 half-Heusler (hH) alloys are considered promising for high-temperature thermoelectric applications due to their high Seebeck coefficient, mechanical stability, and robustness. However, their relatively large lattice thermal conductivity () significantly limits their thermoelectric performance. Introducing mass disorder at lattice sites is an effective approach to suppress through enhanced phonon scattering. For instance, NbCoSn exhibits a low figure of merit () despite having a reasonably high power factor of 2.1~ at room temperature, mainly due to its large lattice thermal conductivity, reported to be 13.25~ experimentally and 18~ theoretically. In this work, we explore the thermoelectric properties of and…
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