Investigation of the thermoelectric properties of one-layer transition metal dichalcogenides |
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Affiliation: | 1. Department Radiology Technology/College of Health and Medical Technology/Middle Technical University (MTU), Iraq;2. Department of Physics, College of Education for Pure Science (Ibn-AL-Haitham)/University of Baghdad, Iraq;1. Department Radiology Technology/College of Health and Medical Technology/Middle Technical University (MTU), Iraq;2. Department of Physics, College of Education for Pure Science (Ibn-AL-Haitham)/University of Baghdad, Iraq;1. Institute of Microscale Optoelectronics, College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, Guangdong 518060, China;2. Department of Physics, Allama Iqbal Open University, Islamabad, Pakistan;3. Department of Mechanical and Mechatronics Engineering, University of Waterloo, 200 University Ave. West, Waterloo, Ontario N2L 3G1, Canada |
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Abstract: | Transition metal dichalcogenides (TMDCs) have attracted various research interests as one of the priorities of materials research due to their promising properties, especially in the field of thermoelectricity. The efficiency or performance of thermoelectric devices is expressed in terms of the thermoelectric figure-of-merit (ZT) – a standard indicator of a material's thermoelectric properties for use in cooling systems. The evaluation of ZT is principally determined by the thermoelectric characteristics of the nanomaterials. In this paper, a set of investigative computations was performed to study the thermoelectric properties of monolayer TMDCs according to the semiclassical treatment of the Boltzmann transport equation. It was confirmed that the thermoelectric properties of 2D materials can be greatly improved compared with their bulk properties. Calculations show an improvement in the power factor for the TMDCs under consideration, and, thus, the ZT compared to the bulk state due to an improvement in the Seebeck modulus and electrical conductivity, without significantly affecting the thermal conductivity and negatively affecting the ZT. These materials show clear characteristic variations at room temperature, with the highest ZT values of 2.919 and 2.873 obtained for WSe2 and WS2, respectively. |
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