Title :
Influence of pre-annealing and Mn + Al double doping on the microstructure and thermoelectric properties of iron disilicide
Author :
Chen, H.Y. ; Zhao, X.B. ; He, Z.M. ; Stiewe, C. ; Müller, E.
Abstract :
Iron disilicide based thermoelectric materials with the designed composition Fe1-xMnxAlySi2-y (x = 0.06, 0.08; y = 0, 0.02, 0.04) were prepared by rapid solidification and hot pressing (1193K, 100 MPa, 30 minutes). The effects of Mn+Al double doping were investigated. The influence of pre-annealing on the microstructure and the transport properties were also studied. X-ray diffraction and scanning electron microscopy show that after pre-annealing at 800degC for only 10 hours, the high temperature phases (alpha-Fe2Si5 and epsiv-FeSi) in the rapidly solidified powders Fe1-xMnx AlySi2-y have been completely transformed to (beta-FeSi2 phase for y = 0 and y = 0.02. It is found that the grain growth during hot pressing was suppressed for the pre-annealed samples. For the pressed compacts, the Seebeck coefficient was markedly enhanced by the pre-annealing treatment, while both the electrical conductivity and the thermal conductivity were decreased. Mn+Al double doping improves the electrical conductivity, but deteriorates the Seebeck coefficient and the thermal conductivity. The maximum of the figure of merit (ZT = 0.20) is obtained at 890 K for the sample double doped with y = 0.04 (Fe0.94Mn0.06Al0.02Si1.98) that is hot pressed from pre-annealed powders
Keywords :
Seebeck effect; X-ray diffraction; aluminium; annealing; crystal microstructure; doping; electrical conductivity; grain growth; hot pressing; iron compounds; manganese; scanning electron microscopy; solid-state phase transformations; solidification; thermal conductivity; 10 hrs; 100 MPa; 1193 K; 30 mins; 800 C; Fe0.94Mn0.06Al0.02Si1.98 ; Seebeck coefficient; X-ray diffraction; crystal microstructure; double doping; electrical conductivity; grain growth; high temperature phases; hot pressing; iron disilicide; pre-annealing treatment; rapid solidification; scanning electron microscopy; solidified powders; thermal conductivity; thermoelectric materials; thermoelectric property; Composite materials; Doping; Electrons; Iron; Microstructure; Powders; Pressing; Thermal conductivity; Thermoelectricity; X-ray diffraction;
Conference_Titel :
Thermoelectrics, 2006. ICT '06. 25th International Conference on
Conference_Location :
Vienna
Print_ISBN :
1-4244-0811-3
Electronic_ISBN :
1094-2734
DOI :
10.1109/ICT.2006.331230