Issue 20, 2022, Issue in Progress

Pressure-driven thermoelectric properties of defect chalcopyrite structured ZnGa2Te4: ab initio study

Abstract

The pressure induced structural, electronic, transport, and lattice dynamical properties of ZnGa2Te4 were investigated with the combination of density functional theory, Boltzmann transport theory and a modified Debye–Callaway model. The structural transition from I[4 with combining macron] to I[4 with combining macron]2m occurs at 12.09 GPa. From the basic observations, ZnGa2Te4 is found to be mechanically as well as thermodynamically stable and ductile up to 12 GPa. The direct band gap of 1.01 eV is inferred from the electronic band structure. The quantitative analysis of electron transport properties shows that ZnGa2Te4 has moderate Seebeck coefficient and electrical conductivity under high pressure, which resulted in a large power factor of 0.63 mW m−1 K−2 (750 K). The ultralow lattice thermal conductivity (∼1 W m−1 K−1 at 12 GPa) is attributed to the overlapping of acoustic and optical phonon branches. As a result, the optimal figure of merit of 0.77 (750 K) is achieved by applying a pressure of 12 GPa. These findings support that ZnGa2Te4 can be a potential p-type thermoelectric material under high pressure and thus open the door for its experimental exploration.

Graphical abstract: Pressure-driven thermoelectric properties of defect chalcopyrite structured ZnGa2Te4: ab initio study

Article information

Article type
Paper
Submitted
07 Feb 2022
Accepted
17 Apr 2022
First published
26 Apr 2022
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2022,12, 12573-12582

Pressure-driven thermoelectric properties of defect chalcopyrite structured ZnGa2Te4: ab initio study

P. Govindaraj, M. Sivasamy, K. Murugan, K. Venugopal and P. Veluswamy, RSC Adv., 2022, 12, 12573 DOI: 10.1039/D2RA00805J

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