Issue 29, 2019

Significant average ZT enhancement in Cu3SbSe4-based thermoelectric material via softening p–d hybridization

Abstract

As a tellurium- and lead-free compound, Cu3SbSe4 is a promising thermoelectric material with relatively high Seebeck coefficient and low thermal conductivity. Here, an effective strategy of weakening p–d hybridization was proposed and demonstrated to enhance the thermoelectric properties for Cu3SbSe4via Ag substitution. This strategy performs a multiple role in high thermoelectric performance, boosting both maximum and average ZT: (1) increase the hole concentration due to the weakened Cu–Se bonding, (2) enlarge the energy gap Eg, putting off the bipolar diffusion, (3) increase the density of states effective mass, and (4) reduce the lattice thermal conductivity mainly due to the large strain fluctuations. As a consequence, a peak ZT ∼ 0.9 at 623 K and a high average ZT above 0.5 for the range 298–623 K can be achieved in a Cu2.85Ag0.15SbSe4 sample. This study provides a new strategy of softening p–d hybridization to boost the thermoelectric performance of Cu3SbSe4 by the synergistic regulation of charge carrier and phonon transports, which is also a meaningful guidance to achieve high thermoelectric performance in other copper-based chalcogenides.

Graphical abstract: Significant average ZT enhancement in Cu3SbSe4-based thermoelectric material via softening p–d hybridization

Associated articles

Supplementary files

Article information

Article type
Paper
Submitted
15 May 2019
Accepted
20 Jun 2019
First published
20 Jun 2019

J. Mater. Chem. A, 2019,7, 17648-17654

Significant average ZT enhancement in Cu3SbSe4-based thermoelectric material via softening p–d hybridization

D. Zhang, J. Yang, H. Bai, Y. Luo, B. Wang, S. Hou, Z. Li and S. Wang, J. Mater. Chem. A, 2019, 7, 17648 DOI: 10.1039/C9TA05115E

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