Department of Physics, School of Basic Sciences, Central University of Punjab, Bathinda, 151401, India.
Department of Physics, Himachal Pradesh University, Shimla, 171005, India.
Nanoscale. 2023 Mar 23;15(12):5964-5975. doi: 10.1039/d2nr05483c.
Two-dimensional (2D) materials have garnered considerable attention as emerging thermoelectric (TE) materials owing to their unique density of states (DOS) near the Fermi level. We investigate the TE performance of Janus β-PdXY (X/Y = S, Se, Te) monolayer materials as a function of carrier concentration and temperature in the mid-range from 300 to 800 K by combining density functional theory (DFT) and semi-classical Boltzmann transport theory. The phonon dispersion spectra and AIMD simulations confirm their thermal and dynamic stability. The transport calculation results reveal the highly anisotropic TE performance of both n and p-type Janus β-PdXY monolayers. Meanwhile, the coexistence of low phonon group velocity and a converged scattering rate leads to a lower lattice thermal conductivity () of 0.80 W mK, 0.94 W mK, and 0.77 W mK along the -direction for these Janus materials, while the high TE power factor is attributed to the high Seebeck coefficient () and electrical conductivity, which are due to the degenerate top valence bands of these Janus monolayers. The combination of lower and a high-power factor at 300 K (800 K) leads to an optimal figure of merit () of 0.68 (2.21), 0.86 (4.09) and 0.68 (3.63) for p-type Janus PdSSe, PdSeTe and PdSTe monolayers, respectively. To evaluate rational electron transport properties, the effects of acoustic phonon scattering (), impurity scattering (), and polarized phonon scattering () are included in the temperature-dependent electron relaxation time. These findings indicated that the Janus β-PdXY monolayers are promising candidates for TE conversion devices.
二维(2D)材料由于其费米能级附近独特的态密度(DOS)而引起了人们的广泛关注,被认为是新兴的热电(TE)材料。我们通过结合密度泛函理论(DFT)和半经典玻尔兹曼输运理论,研究了载流子浓度和温度在 300 到 800K 范围内变化时,Janusβ-PdXY(X/Y=S、Se、Te)单层材料的 TE 性能。声子色散谱和 AIMD 模拟证实了它们的热和动力学稳定性。输运计算结果揭示了 n 型和 p 型 Janusβ-PdXY 单层材料具有高度各向异性的 TE 性能。同时,低的声子群速度和收敛的散射率共存导致这些 Janus 材料在 -方向上的晶格热导率()分别为 0.80 W mK、0.94 W mK 和 0.77 W mK,而高的 TE 功率因子归因于高的塞贝克系数()和电导率,这是由于这些 Janus 单层的简并顶价带所致。在 300K(800K)下,低的()和高的功率因子()相结合,导致 p 型 JanusPdSSe、PdSeTe 和 PdSTe 单层的最佳品质因数()分别为 0.68(2.21)、0.86(4.09)和 0.68(3.63)。为了评估合理的电子输运性质,在温度相关的电子弛豫时间中包含了声学声子散射()、杂质散射()和极化声子散射()的影响。这些发现表明 Janusβ-PdXY 单层是 TE 转换器件的有前途的候选材料。