Electron and phonon transport in shandite-structured Ni$_3$Sn$_2$S$_2$
Alex Aziz, Panagiotis Mangelis, Paz Vaqueiro, Anthony V. Powell and, Ricardo Grau-Crespo

TL;DR
This study combines theoretical calculations and experiments to analyze electron and phonon transport in Ni3Sn2S2, revealing its poor thermoelectric performance but providing insights for related materials.
Contribution
It provides a detailed analysis of transport properties in Ni3Sn2S2 using DFT, Boltzmann theory, and experiments, highlighting phonon scattering and thermal conductivity mechanisms.
Findings
Seebeck coefficients match between theory and experiment (100-600 K)
Electron scattering dominated by phonons in 300-600 K range
Lattice thermal conductivity is very low (~2 W/mK at 300 K)
Abstract
The shandite family of solids, with hexagonal structure and composition A3M2X2 (A = Ni,Co,Rh,Pd; M = Pb,In,Sn,Tl; X = S,Se), has attracted recent research attention due to promising applications as thermoelectric materials. Herein we discuss the electron and phonon transport properties of shandite-structured Ni3Sn2S2, based on a combination of density functional theory (DFT), Boltzmann transport theory, and experimental measurements. Ni3Sn2S2 exhibits a metallic and non-magnetic groundstate with Ni oxidation state and very low charge on Sn and S atoms. Seebeck coefficients obtained from theoretical calculations are in excellent agreement with those measured experimentally between 100 and 600 K. From the calculation of the ratio / between the electronic conductivity and relaxation time, and the experimental determination of electron conductivity, we extract the…
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