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Anisotropy of Microstructure and Its Influence on Thermoelectricity: The Case of Cu2Te−Sb2Te3 Eutectic

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dc.contributor.author Mukherjee, Shriparna
dc.contributor.author Aramanda, Shanmukha Kiran
dc.contributor.author Legese, Surafel Shiferaw
dc.contributor.author Riss, Alexander
dc.contributor.author Olu, Gerda Rogl
dc.contributor.author Femi, Emmanuel
dc.contributor.author Bauer, Ernst
dc.contributor.author Rogl, Peter Franz
dc.contributor.author Chattopadhyay, Kamanio
dc.date.accessioned 2022-05-16T08:42:20Z
dc.date.available 2022-05-16T08:42:20Z
dc.date.issued 2021-10-14
dc.identifier.uri https://repository.ju.edu.et//handle/123456789/7269
dc.description.abstract Using a set of controlled in situ grown lamellar composites of (Cu2Te)62.02−(Sb2Te3)37.98, we report a remarkable variation of transport properties of thermoelectricity not only as a function of microstructural length scale but also as a function of direction-dependent arrangement of the phases and hence their interfaces. A quantitative evaluation of the microstructure along the transverse and the longitudinal directions of growth, imposed by the temperature gradient and growth rate in a unidirectional solidification setup, has been carried out. The microstructure is quantified through image analysis using fast Fourier transforms as well as a cluster base connectivity model and is further correlated with the thermoelectric transport properties. A marked anisotropy of properties as a function of measurement direction in the microstructural landscape could be observed. A maximum power factor of ∼1.4 mW m−1 K−2 and a figure of merit of 0.29 could be obtained at 580 K along the transverse direction for the sample with the characteristic microstructural length scale of 2.41 μm. This has an implication in engineering a thermoelectric device in terms of engineering power factor and output power density. For a ΔT of 250 K, we report a difference of 0.4 W cm−2 in output power density between the transverse and the longitudinal directions that have an identical microstructural length scale of 2.41 μm en_US
dc.language.iso en_US en_US
dc.subject thermoelectric en_US
dc.subject directional solidification en_US
dc.subject eutectic en_US
dc.subject microstructure en_US
dc.subject transport properties en_US
dc.title Anisotropy of Microstructure and Its Influence on Thermoelectricity: The Case of Cu2Te−Sb2Te3 Eutectic en_US
dc.type Article en_US


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