Title :
The mechanochemical synthesis of thermoelectric material iron disilicide based
Author :
Belyaev, E.Yu. ; Suchkova, G.A. ; Ancharov, A.I. ; Lomovsky, O.I. ; Maly, V.I.
Author_Institution :
Inst. of Solid State Chem., Acad. of Sci., Novosibirsk, Russia
Abstract :
The iron disilicide is the cheapest thermoelectric material available for mass production of generators. The problem is one of low efficiency of iron disilicide. The efficiency can be imceased by means of doping of iron disilicide, thus making a composite material, and diminishing the grain size of iron disilicide ceramics. Mechanical alloying is the most convenient method of iron silicide production. The goal of our work was to improve the properties of iron disilicide ceramics by a method of nonconventional multicomponents doping. The mechanochemical synthesis was performed by means of high energy planetary ball mill ISSCM construction. The balls acceleration was 600 m/sec2. The compositions of synthesized powders was follows: Fe1-xDxSi2-y´Dy, where D,´D are Co, Al, B, Cr, Nd and x,y was from 0 to 12 at%. The synthesized powders have nanoscale grain sizes and phase compositions were the mixtures of FeSi2 and FeSi phases. The powder compacting was performed by conventional pressing under 2-4 t/sm2 and by explosive compacting under varied conditions. Compacted samples were sintered in a vacuum of 10-6 torr at 1150°C and annealed at 800°C. The properties of powders and ceramics were investigated by X-ray diffraction of synchrotron radiation. The thermoelectric properties were examined also, and compared with the properties of conventional materials
Keywords :
ceramics; grain size; iron compounds; mechanical alloying; powder technology; sintering; thermoelectricity; 10-6 torr; 1150 C; 800 degC; FeSi2 based ceramics; X-ray diffraction; compacting; grain size; mechanical alloying; mechanochemical synthesis; multicomponent doping; sintered; thermoelectric material; thermoelectric properties; Alloying; Ceramics; Composite materials; Doping; Grain size; Iron; Mass production; Nanocomposites; Powders; Thermoelectricity;
Conference_Titel :
Thermoelectrics, 2001. Proceedings ICT 2001. XX International Conference on
Conference_Location :
Beijing
Print_ISBN :
0-7803-7205-0
DOI :
10.1109/ICT.2001.979872