TY - JOUR
T1 - Thermoelectric properties of five SnTe monolayer allotropes
AU - Yang, H.
AU - Shi, H. L.
AU - Yang, J.
AU - Han, Q. Z.
AU - Zhao, Y. H.
AU - Gong, L. J.
AU - Liu, Q. H.
AU - Cheng, R. S.
AU - Jiang, Z. T.
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/6/1
Y1 - 2025/6/1
N2 - Aiming at exploring materials of high thermoelectric (TE) performance, we systematically construct five SnTe monolayer allotropes including the α-SnTe, β-SnTe, and the newly designed γ-, δ-, and ɛ-SnTe. By using the first-principles calculations and nonequilibrium Green's function method, their TE properties including the electrical conductance, the Seebeck coefficient, the power factor, the thermal conductance, and the figure of merit ZT have been comparatively studied. For the α-, γ-, δ-, and ɛ-SnTe monolayers, two ZT peaks are observed near zero chemical potential and four ZT peaks will be observed for the β-SnTe monolayer. At room temperature, the maximum ZTs of the α-, γ-, and δ-SnTe monolayers are in the range from 1.5 to 2.0, and those of the β- and ɛ-SnTe monolayers are greater than 4.0. As the temperature is increased to 700 K, the maximum ZTs of all the five SnTe monolayers can be greater than 4.0 with the maximum ZT of the β-SnTe (ɛ-SnTe) being 7.51 (8.39) in the X direction. This indicates that the β- and ɛ-SnTe monolayers can be used as the superior TE materials.
AB - Aiming at exploring materials of high thermoelectric (TE) performance, we systematically construct five SnTe monolayer allotropes including the α-SnTe, β-SnTe, and the newly designed γ-, δ-, and ɛ-SnTe. By using the first-principles calculations and nonequilibrium Green's function method, their TE properties including the electrical conductance, the Seebeck coefficient, the power factor, the thermal conductance, and the figure of merit ZT have been comparatively studied. For the α-, γ-, δ-, and ɛ-SnTe monolayers, two ZT peaks are observed near zero chemical potential and four ZT peaks will be observed for the β-SnTe monolayer. At room temperature, the maximum ZTs of the α-, γ-, and δ-SnTe monolayers are in the range from 1.5 to 2.0, and those of the β- and ɛ-SnTe monolayers are greater than 4.0. As the temperature is increased to 700 K, the maximum ZTs of all the five SnTe monolayers can be greater than 4.0 with the maximum ZT of the β-SnTe (ɛ-SnTe) being 7.51 (8.39) in the X direction. This indicates that the β- and ɛ-SnTe monolayers can be used as the superior TE materials.
KW - Figure of merit
KW - Monolayer allotropes
KW - Thermoelectric transport
UR - http://www.scopus.com/inward/record.url?scp=86000644848&partnerID=8YFLogxK
U2 - 10.1016/j.physb.2025.417090
DO - 10.1016/j.physb.2025.417090
M3 - Article
AN - SCOPUS:86000644848
SN - 0921-4526
VL - 706
JO - Physica B: Condensed Matter
JF - Physica B: Condensed Matter
M1 - 417090
ER -