Significant low lattice thermal conductivity and potential high thermoelectric figure of merit in Na$_2$MgSn
Cong Wang, Y. B. Chen, Shu-Hua Yao, Jian Zhou

TL;DR
This study theoretically investigates Na$_2$MgSn and Na$_2$MgPb, revealing their very low lattice thermal conductivities and potential as thermoelectric materials, especially Na$_2$MgSn with a predicted ZT of 0.34 at room temperature.
Contribution
It provides the first theoretical analysis of the lattice thermal conductivity and thermoelectric potential of Na$_2$MgSn and Na$_2$MgPb, highlighting Na$_2$MgSn as a promising thermoelectric candidate.
Findings
Na$_2$MgSn has low thermal conductivity of 1.75 and 0.80 W/m·K along axes at room temperature.
Na$_2$MgPb's thermal conductivity decreases to 0.51 and 0.31 W/m·K with heavier Pb.
Na$_2$MgSn is predicted to have a ZT of 0.34 at 300 K.
Abstract
Thermoelectric materials enables the harvest of waste heat and directly conversion into electricity. In search of high efficient thermoelectric materials, low thermal conductivity of a material is essential and critical. Here, we have theoretically investigated the lattice thermal conductivity and thermoelectric properties of layered intermetallic NaMgSn and NaMgPb based on the density functional theory and linearized Boltzmann equation with the single-mode relaxation-time approximation. It is found that both materials exhibit very low and anisotropic intrinsic lattice thermal conductivity. Despite of the very low mass density and simple crystal structure of NaMgSn, its lattice thermal conductivities along and axes are only 1.75 and 0.80 W/mK respectively at room temperatures. When Sn is replaced by the heavier element Pb, its lattice thermal conductivities…
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