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WFRF:(Saleemi M A)
 

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Fabrication of nanostructured bulk cobalt antimonide (CoSb3) based skutterudites via bottom-up synthesis

Saleemi, Mohsin (författare)
KTH,Funktionella material, FNM
Yakhshi Tafti, Mohsen (författare)
KTH,Funktionella material, FNM
Toprak, Muhammet S. (författare)
KTH,Funktionella material, FNM
visa fler...
Stingaciu, M. (författare)
Johnsson, M. (författare)
Jägle, M. (författare)
Jacquot, A. (författare)
Muhammed, Mamoun (författare)
KTH,Funktionella material, FNM
visa färre...
 (creator_code:org_t)
2012-12-18
2013
Engelska.
Ingår i: Thermoelectric Materials Research and Device Development for Power Conversion and Refrigeration. - : Materials Research Society. - 9781605114675 ; , s. 121-126
  • Konferensbidrag (refereegranskat)
Abstract Ämnesord
Stäng  
  • Skutterudites are known to be efficient thermoelectric (TE) materials in the temperature range from 600 K to 900 K. Dimensionless figure of merit (ZT) for filled skutterudite TE materials have been reported as ca. 1 at 800 K. Novel nano- engineering approaches and filling of the skutterudites crystal can further improve the transport properties and ultimately the ZT. Although classified among the promising TE materials, research on their large-scale production via bottom up synthetic routes is rather limited. In this work, large quantity of cobalt antimonide (CoSb3) based skutterudites nanopowder (NP) was fabricated through a room temperature coprecipitation precursor method. Dried precipitates were process by thermo-chemical treatment steps including calcination (in air) and reduction (in hydrogen). CoSb3 NPs were then mixed with silver (Ag) nanopanicles at different weight percentages (1%, 5% and 10% by wt) to form nanocomposites. Skutterudite NP was then consolidated by Spark Plasma Sintering (SPS) technique to produce highly dense compacts while maintaining the nanostructure. Temperature dependent TE characteristics of SPS'd CoSb3 and Ag containing nanocomposite samples were evaluated for transport properties, including thermal conductivity, electrical conductivity and Seebeck coefficient over the temperature range of 300-900 K. Physicochemical, structural and microstructural evaluation results are presented in detail.

Nyckelord

Bottom up synthesis
Cobalt antimonide
Nanostructured
Skutterudite
Spark plasma sintering
Thermoelectric

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