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High Thermoelectric Performance of Co-Doped P-Type Polycrystalline SnSe via Optimizing Electrical Transport Properties

43

Citations

42

References

2020

Year

Abstract

This work systematically investigated the thermoelectric properties of p-type Na and M (M = K, Li, Ag) codoped polycrystalline SnSe. It is found that the electrical properties of polycrystalline SnSe can be improved significantly for (Na, Ag) codoped samples, contributed by the enhanced carrier concentration. Specifically, a carrier concentration of 6.23 × 10<sup>19</sup> cm<sup>-3</sup> was obtained in Sn<sub>0.98</sub>Na<sub>0.016</sub>Ag<sub>0.004</sub>Se sample at 335 K, an increase of 18% compared with that of the Na single-doped sample (5.22 × 10<sup>19</sup> cm<sup>-3</sup>). The power factor reached ∼0.73 mW m<sup>-1</sup> K<sup>-2</sup> for the Sn<sub>0.98</sub>Na<sub>0.016</sub>Ag<sub>0.004</sub>Se sample at 785 K, enhanced by ∼26% compared with Na single-doped one. In addition, Sn-rich and Ag-rich particles/areas observed in the matrix of Sn<sub>0.98</sub>Na<sub>0.016</sub>Ag<sub>0.004</sub>Se contribute to the reduction of lattice thermal conductivity from 0.61 W m<sup>-1</sup> K<sup>-1</sup> for Sn<sub>0.98</sub>Ag<sub>0.02</sub>Se to 0.47 W m<sup>-1</sup> K<sup>-1</sup> at 785 K. The combination of simultaneously enhanced power factor and depressed thermal conductivity leads to a maximum <i>ZT</i> ≈ 1.2 at 785 K and a high average <i>ZT</i> ≈ 0.74 at 335-785 K for Sn<sub>0.98</sub>Na<sub>0.016</sub>Ag<sub>0.004</sub>Se, and generating a high theoretical conversion efficiency of ∼11%. These illuminating discoveries could provide routes to enhance the thermoelectric performance in p-type polycrystalline SnSe.

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