Comparative analysis of thermoelectric properties in bulk 2H and monolayer MoS2: a first-principles study at high temperatures

单层 材料科学 热电效应 凝聚态物理 工程物理 纳米技术 热力学 物理
作者
Rohit Kumar,Bhaskaran Muralidharan
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:99 (11): 115944-115944 被引量:7
标识
DOI:10.1088/1402-4896/ad80e8
摘要

Abstract The pursuit of high-efficiency heat-to-electricity conversion is one of the indispensable driving forces toward future renewable energy production. The two-dimensional (2D) transition metal dichalcogenide, such as molybdenum disulfide (MoS 2 ), is at the forefront of research due to its outstanding heat propagation features and potential applications as a thermoelectric material. Using the first-principles density functional theory coupled with the semi-classical Boltzmann transport equation within the constant relaxation time approximation, we present the thermoelectric and energy transport in the bulk 2H and monolayer MoS 2 material system. In order to advance the underlying physics, we calculate several crucial transport parameters such as electrical conductivity, electronic thermal conductivity, Seebeck coefficient, and power factor as a function of the reduced chemical potential for different doping types and temperatures, in addition to the electron energy dispersion relation of the material system. Our comprehensive study employs the Shankland interpolation algorithm and the rigid band approximation to attain a high degree of accuracy. This thorough investigation reveals the high Seebeck coefficient of 1534 and 1550 μ V / K at 500 K for the bulk 2H and monolayer MoS 2 , respectively. Furthermore, the ultrahigh power factor values of 9.21 × 10 11 and 3.69 × 10 11 Wm −1 K −2 s −1 are shown at 800 K in the bulk 2H and monolayer MoS 2 , respectively. Based on the power factor results, our in-depth analysis demonstrates that the bulk 2H MoS 2 , when compared to monolayer MoS 2 , exhibits great potential as a promising semiconducting thermoelectric material for advanced high-performance energy device applications.
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