Production of (Fe,Co)Si2 and (Fe.Mn)Si2 Thermoelectric Materials by Spark Plasma Sintering

被引:1
|
作者
Saito, Tetsuji [1 ]
Asakawa, Ryoki [1 ,2 ]
机构
[1] Chiba Inst Technol, Dept Adv Mat Sci & Engn, Narashino, Chiba 2758588, Japan
[2] Pacific Steel Mfg Co Ltd, Toyama 9300808, Japan
关键词
thermoelectric materials; iron silicide; mechanical alloying; spark plasma sintering; WASTE HEAT-RECOVERY; TO-METAL TRANSITION; N-TYPE; BISMUTH TELLURIDE; P-TYPE; BETA-FESI2; MICROSTRUCTURE; TECHNOLOGIES; MN;
D O I
10.3390/cryst14010056
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
In this study, FeSi2 bulk specimens were prepared by mechanical alloying, spark plasma sintering, and subsequent annealing. The annealed FeSi2 bulk specimens consisted of the beta-FeSi2 phase and exhibited high Seebeck coefficient values. The maximum Seebeck coefficient of 356 mu VK-1 was achieved in the FeSi2 bulk specimen annealed at 1173 K for 6 h. However, the power factor of the FeSi2 bulk specimen was quite small due to its high electrical resistivity, and a drastic improvement is required. Therefore, Mn- and Co-substituted specimens, Fe1-xMnxSi2 (x = 0.2-0.8) and Fe1-xCoxSi2 (x = 0.2-0.8), were produced, and their thermoelectric properties were evaluated. The Mn- and Co-substituted specimens exhibited lower electrical resistivity and a higher power factor than the FeSi2 bulk specimen. The Fe1-xMnxSi2 (x = 0.2-0.8) bulk specimens were p-type thermoelectric materials, and a Seebeck coefficient of 262 mu VK-1 and a power factor of 339 mu Wm(-1)K(-2) were achieved in the Fe0.94Mn0.06Si2 bulk specimen. On the other hand, the Fe1-xCoxSi2 (x = 0.2-0.8) bulk specimens were n-type thermoelectric materials, and a Seebeck coefficient of -180 mu VK-1 and a power factor of 667 mu Wm(-1)K(-2) were achieved in the Fe0.96Co0.04Si2 bulk specimen.
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页数:11
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