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Synthesis and Transport Properties of ZnSnP<sub>2-y</sub>As<sub>y</sub> Chalcopyrite Solid Solutions
oleh: Daniel Ramirez, Luke T. Menezes, Holger Kleinke
Format: | Article |
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Diterbitkan: | MDPI AG 2024-04-01 |
Deskripsi
This work focuses on the synthesis and properties of quaternary ZnSnP<sub>2-y</sub>As<sub>y</sub> chalcopyrite solid solutions. Full miscibility of the solid solution is achieved using ball milling followed by hot press sintering. The measured electrical conductivity increases substantially with As substitution from 0.03 S cm<sup>−1</sup> for ZnSnP<sub>2</sub> to 10.3 S cm<sup>−1</sup> for ZnSnAs<sub>2</sub> at 715 K. Band gaps calculated from the activation energies show a steady decrease with increasing As concentration from 1.4 eV for ZnSnP<sub>2</sub> to 0.7 eV for ZnSnAs<sub>2</sub>. The Seebeck coefficient decreases significantly with As substitution from nearly 1000 μV K<sup>−1</sup> for ZnSnP<sub>2</sub> to −100 μV K<sup>−1</sup> for ZnSnAs<sub>2</sub> at 650 K. Thermal conductivity is decreased for the solid solutions due to alloy phonon scattering, compared to the end members with y = 0 and y = 2, with the y = 0.5 and y = 1.0 samples exhibiting the lowest values of 1.4 W m<sup>−1</sup> K<sup>−1</sup> at 825 K. Figure of merit values are increased for the undoped solid solutions at lower temperatures when compared to the end members due to the decreased thermal conductivity, with the y = 0.5 sample reaching <i>zT</i> = 1.6 × 10<sup>−3</sup> and y = 1 reaching 2.1 × 10<sup>−3</sup> at 700 K. The largest values of the figure of merit <i>zT</i> for the undoped series was found for y = 2 with <i>zT</i> = 2.8 × 10<sup>−3</sup> at 700 K due to the increasing <i>n</i>-type Seebeck coefficient. Boltztrap calculations reveal that <i>p</i>-doping could yield <i>zT</i> values above unity at 800 K in case of ZnSnAs<sub>2</sub>, comparable with ZnSnP<sub>2</sub>.