Abstract
Equiatomic quaternary Heusler alloys have recently emerged as promising multifunctional materials due to their tunable structural order, robust magnetism, and versatile transport properties. In this work, we present a comprehensive first-principles investigation of equiatomic XMnCrZ () alloys using density functional theory (DFT) and density functional perturbation theory (DFPT). Electronic structure analysis shows that and exhibit half-metallicity with nearly 100% spin polarization, in excellent agreement with the Slater–Pauling rule, while Ni-based alloys retain metallic behavior. The magnetic moments are primarily carried by Mn and Cr atoms, with Ti- and Ni-based alloys displaying distinct magnetic exchange interactions. The thermoelectric properties evaluated at the Fermi level reveal positive Seebeck coefficients for the Ni-based alloys and negative values for the Ti-based compounds. However, upon tuning the Fermi level to an optimal energy, exhibits a remarkable enhancement in its Seebeck coefficient, reaching a maximum of at room temperature. While the other materials also display noticeable increases, stands out as the most promising candidate for efficient thermoelectric and multifunctional applications among the investigated EQHAs.
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Sreeram, K. P., Jena, S., Kushwaha, V. K., Yenugonda, V., & Rani, J. (2026). DFT-based exploration of XMnCrZ (X = Ni, Ti; Z = Sn, Sb) quaternary heusler alloys for structural and multifunctional properties. Scientific Reports, 16(1). https://doi.org/10.1038/s41598-025-32870-6
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