Using heterostructural alloying to tune the structure and properties of the thermoelectric Sn 1−x Ca x Se

We grow and kinetically stabilize the isotropic rocksalt phase of SnSe thin films by alloying SnSe with CaSe. Thin polycrystalline films of the metastable heterostructural alloy Sn 1−x Ca x Se are synthesized by pulsed laser deposition on amorphous SiO 2 over the entire composition range 0 < x &l...

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Veröffentlicht in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2017, Vol.5 (32), p.16873-16882
Hauptverfasser: Matthews, Bethany E., Holder, Aaron M., Schelhas, Laura T., Siol, Sebastian, May, James W., Forkner, Michael R., Vigil-Fowler, Derek, Toney, Michael F., Perkins, John D., Gorman, Brian P., Zakutayev, Andriy, Lany, Stephan, Tate, Janet
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Sprache:eng
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Zusammenfassung:We grow and kinetically stabilize the isotropic rocksalt phase of SnSe thin films by alloying SnSe with CaSe. Thin polycrystalline films of the metastable heterostructural alloy Sn 1−x Ca x Se are synthesized by pulsed laser deposition on amorphous SiO 2 over the entire composition range 0 < x < 1. We observe the theoretically-predicted, composition-driven change from a layered, orthorhombic structure to an isotropic, cubic structure near x = 0.18, in reasonable agreement with the theoretical value of x = 0.13 calculated from first principles. The optical band gap is highly non-linear in x and the trend agrees with theory predictions. Compared to the layered end-member SnSe, the isotropic alloy near the orthorhombic-to-rocksalt transition has a p-type electrical resistivity three orders of magnitude lower, and a thermoelectric power factor at least ten times larger. Thus manipulation of the structure of a functional material like SnSe via alloying may provide a new path to enhanced functionality, in this case, improved thermoelectric performance.
ISSN:2050-7488
2050-7496
DOI:10.1039/C7TA03694A