Thermoelectric performance of Ni-Au metallic alloys determined by resonant scattering
Kacper Pryga, Bartlomiej Wiendlocha

TL;DR
This study uses first-principles calculations to reveal how resonant scattering in Ni-Au alloys enhances thermoelectric performance, showing potential for further optimization through lattice parameter tuning.
Contribution
It demonstrates the role of resonant scattering and flat band formation in Ni-Au alloys, providing insights into their superior thermoelectric properties compared to similar alloys.
Findings
Ni-Au alloys exhibit high thermopower due to resonant scattering.
Resonant and weak scattering regimes near the Fermi level influence thermoelectric properties.
Lattice parameter variation can further improve thermoelectric performance.
Abstract
This work presents a theoretical study of the electronic structure and transport properties of Ni-Au alloys, recently identified as excellent thermoelectric metals with a power factor significantly exceeding that of conventional semiconductor thermoelectrics. Using first-principles calculations based on the Korringa-Kohn-Rostoker method combined with the coherent-potential approximation (KKR-CPA) and the Kubo-Greenwood formalism, we demonstrate the key role of resonant scattering in determining the thermoelectric properties of these alloys. This is supported by calculated densities of states, Bloch spectral functions, electrical conductivity, and thermopower. Alloying Ni with Au not only induces resonant scattering but also leads to the formation of a flat band below the Fermi level. The combination of these two features results in high thermopower, arising from a transition between…
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Taxonomy
TopicsIntermetallics and Advanced Alloy Properties · Thermodynamic and Structural Properties of Metals and Alloys · nanoparticles nucleation surface interactions
