Affiliation:
1. Institute of General and Inorganic Chemistry, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria
2. Faculty of Physics, University of Sofia, 1164 Sofia, Bulgaria
Abstract
The thermoelectric materials that operate at room temperature represent a scientific challenge in finding chemical compositions with three optimized, independent parameters, namely electrical and thermal conductivity and the Seebeck coefficient. Here, we explore the concept of the formation of hybrid composites between carbon-based materials and oxides, with the aim of modifying their thermoelectric performance at room temperature. Two types of commercially available graphene-based materials are selected: N-containing reduced graphene oxide (NrGO) and expanded graphite (ExGr). Although the NrGO displays the lowest thermal conductivity at room temperature, the ExGr is characterized by the lowest electrical resistivity and a negative Seebeck coefficient. As oxides, we choose two perspective thermoelectric materials: p-type Ca3Co4O9 and n-type Zn0.995Al0.005O. The hybrid composites were prepared by mechanical milling, followed by a pelleting. The thermoelectric efficiency was evaluated on the basis of its measured electrical resistivity, Seebeck coefficient and thermal conductivity at room temperature. It was found that that 2 wt.% of ExGr or NrGO leads to an enhancement of the thermoelectric activity of Ca3Co4O9, while, for Zn0.995Al0.005O, the amount of ExGr varies between 5 and 20 wt.%. The effect of the composites’ morphology on the thermoelectric properties is discussed on the basis of SEM/EDS experiments.
Funder
European Network on Materials for Clean Technologies
Ministry of Education and Science
Operational Programme Science and Education for Smart Growth, co-financed by the European Union through the European Regional Development Fund
Subject
General Materials Science
Reference45 articles.
1. Metal oxides for thermoelectric power generation and beyond;Feng;Adv. Compos. Hybrid Mater.,2018
2. Oxide materials for high temperature thermoelectric energy conversion;Fergus;J. Eur. Ceram. Soc.,2012
3. Wolf, M., Hinterding, R., and Feldhoff, A. (2019). High Power Factor vs. High zT—A Review of Thermoelectric Materials for High-Temperature Application. Entropy, 21.
4. Perspectives on Thermoelectrics: From Fundamentals to Device Applications;Zebarjadi;Energy Environ. Sci.,2012
5. Metal oxides with adaptive structures for thermoelectric applications;Kieslich;Phys. Status Solidi A,2016
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献