High thermoelectric and mechanical performance achieved by a hyperconverged electronic structure and low lattice thermal conductivity in GeTe through CuInTe2 alloying

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Date

2023

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Royal Society of Chemistry

Abstract

GeTe-based thermoelectric materials have a very high hole carrier concentration (∼1021 cm−3), and thus, improving the figure of merit, ZT, is substantially challenging. In this work, we foremost dope Bi to lower the majority carrier concentration, followed by alloying CuInTe<inf>2</inf> to further adjust the hole concentration to an optimal level (0.5-2.0 × 1020 cm−3). This strategy also improves the structural symmetry and leads to hyperconverged valence sub-bands and resonance levels, increasing the effective mass from 1.42 m<inf>0</inf> to 1.95 m<inf>0</inf>. Consequently, a high power factor of ∼23 μW cm−1 K−2 at room temperature and ∼41 μW cm−1 K−2 at 623 K in the (Ge<inf>0.93</inf>Bi<inf>0.05</inf>Te<inf>0.98</inf>)(CuInTe<inf>2</inf>)<inf>0.01</inf> sample is reported. Moreover, the introduced point defects and nano-deposits reduce the lattice thermal conductivity to amorphous levels. As a result, the (Ge<inf>0.93</inf>Bi<inf>0.05</inf>Te<inf>0.98</inf>)(CuInTe<inf>2</inf>)<inf>0.01</inf> sample has a peak ZT value of ∼2.16 at 623 K and an average ZT value of ∼1.42 at 300-773 K. A record high hardness value (∼277 Hv) is achieved. Simultaneous Bi doping and CuInTe<inf>2</inf> alloying appear to be an effective strategy for increasing the ZT values of GeTe-based compounds. © 2023 The Royal Society of Chemistry.

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Keywords

Alloying, Bismuth alloys, Crystal lattices, Electronic structure, Germanium alloys, Hole concentration, Point defects, Thermal conductivity, Thermoelectricity, Electronic.structure, Hole carriers, Lattice thermal conductivity, Majority carriers, Mechanical performance, Optimal level, Structural symmetry, Thermo-Electric materials, Thermoelectric material, Thermoelectric performance, Copper alloys

Citation

Journal of Materials Chemistry A, 2023, 11, 15, pp. 8119-8130

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