Journal Article

·2025

Unveiling the pressure-induced properties and ambient thermoelectric behaviour of Co2YZ (Z = Si, Ge, Sn) heusler alloys

Nour ElHouda Dehimi , Mourad Dehbaoui , Kawther Meliani , Khaoula Djennane , Ilhem Benaisti , K. Özdoğan YTU

Physica Scripta

Abstract

Abstract In this study, we present a comprehensive first-principles investigation of the pressure-dependent structural, elastic, thermodynamic, electronic, magnetic, and thermoelectric properties of Co 2 YZ Heusler alloys (Z = Si, Ge, Sn). Calculations were carried out using both the plane-wave pseudopotential method (CASTEP) and the full-potential linearized augmented plane wave method (WIEN2k), enabling cross-validation of results. The elastic analysis indicates that Co 2 YSn remains mechanically stable up to 100 GPa, whereas Co 2 YGe and Co 2 YSi lose stability beyond 96 GPa and 83 GPa, respectively. Electronic band structure calculations at ambient pressure reveal a half-metallic character for Co 2 YSi, while Co 2 YGe and Co 2 YSn exhibit metallic behaviour. The corresponding spin polarization at the Fermi level is 100% for Co 2 YSi, 95% for Co 2 YGe, and 86% for Co 2 YSn. The total magnetic moments follow the Slater–Pauling rule and decrease progressively under pressure. Thermoelectric properties computed using the BoltzTraP code highlight Co 2 YSi as a promising candidate for low-temperature waste heat recovery, with potential implications for energy efficiency and sustainable materials design.

Keywords

Pseudopotential Thermoelectric effect Fermi level Plane wave Magnetic moment Electronic band structure Electronic structure Spin polarization Thermoelectric materials Materials science Condensed matter physics

Subject Areas

Heusler alloys: electronic and magnetic properties ·Electronic, Optical and Magnetic Materials ·Physical Sciences
Advanced Thermoelectric Materials and Devices ·Materials Chemistry ·Physical Sciences
Intermetallics and Advanced Alloy Properties ·Mechanical Engineering ·Physical Sciences