TY - JOUR
T1 - Ab Initio Study of Carrier Mobility, Thermodynamic and Thermoelectric Properties of Kesterite Cu2ZnGeS4
AU - Hamdaoui, Jawad El
AU - Kria, Mohamed
AU - Lakaal, Kamal
AU - El-Yadri, Mohamed
AU - Feddi, El Mustapha
AU - Rejas, Liliana Pedraja
AU - Pérez, Laura M.
AU - Díaz, Pablo
AU - Mora-Ramos, Miguel E.
AU - Laroze, David
N1 - Publisher Copyright:
© 2022 by the authors.
PY - 2022/11
Y1 - 2022/11
N2 - The kesterite Cu (Formula presented.) ZnGeS (Formula presented.) (CZGS) has recently gained significant interest in the scientific community. In this work, we investigated the thermodynamic and thermoelectric properties of CZGS by employing the first-principals calculation in association with the quasi-harmonic approximation, Boltzmann transport theory, deformation potential theory, and slack model. We obtained a bandgap of 2.05 eV and high carrier mobility. We found that CZGS exhibits adequate thermoelectric properties as a promising material for thermoelectric applications. The calculated Seebeck coefficient at room temperature is 149 µV·K (Formula presented.). We also determined the thermal and electrical conductivity, the power factor, and the figure of merit. In addition, the thermodynamic properties such as Debye temperature, entropy, and constant volume heat capacity are estimated. According to our results, it is concluded that the Slack model fails to provide correct values for lattice thermal conductivity in this material.
AB - The kesterite Cu (Formula presented.) ZnGeS (Formula presented.) (CZGS) has recently gained significant interest in the scientific community. In this work, we investigated the thermodynamic and thermoelectric properties of CZGS by employing the first-principals calculation in association with the quasi-harmonic approximation, Boltzmann transport theory, deformation potential theory, and slack model. We obtained a bandgap of 2.05 eV and high carrier mobility. We found that CZGS exhibits adequate thermoelectric properties as a promising material for thermoelectric applications. The calculated Seebeck coefficient at room temperature is 149 µV·K (Formula presented.). We also determined the thermal and electrical conductivity, the power factor, and the figure of merit. In addition, the thermodynamic properties such as Debye temperature, entropy, and constant volume heat capacity are estimated. According to our results, it is concluded that the Slack model fails to provide correct values for lattice thermal conductivity in this material.
KW - CZGS
KW - DFT
KW - kesterite
KW - mobility
KW - thermodynamic
KW - thermoelectric
UR - https://www.scopus.com/pages/publications/85141649453
U2 - 10.3390/ijms232112785
DO - 10.3390/ijms232112785
M3 - Article
C2 - 36361579
AN - SCOPUS:85141649453
SN - 1661-6596
VL - 23
JO - International Journal of Molecular Sciences
JF - International Journal of Molecular Sciences
IS - 21
M1 - 12785
ER -