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A METHOD OF PREPARATION FOR THE HIGH PERFORMANCE THERMOELECTRIC MATERIAL INIDUM-COBALT-ANTIMONY

机译:一种高性能热电材料惯性-钴-锑的制备方法

摘要

The present invention relates to a process for the preparation of thermoelectric compositions of the formula InXCo4Sb12(0x1), with a figure of merit greater ZT than 1.0 and a composition made by that process. The process comprising: a) mixing powders of indium, cobalt and antimony to form a mixture of powders such that there is 0.006 to 0.030 atomic percent indium, 0.242 to 0.248 atomic percent cobalt and 0.727 to 0.745 atomic percent antimony in said mixture of powders b) flowing a gas composition through a furnace containing said mixture of powders, said gas composition comprising of I to 15 atomic percent hydrogen and 85 to 99 atomic percent argon c) heating said furnace at approximately I to 5 C/minute from room temperature to from 590°C to 620°C and holding said furnace at 590°C to 620°C for between ten and fourteen hours d) further heating said furnace to between 665°C to 685°C at approximately 1 to 5 C/minute and holding said furnace at 665°C to 685°C for between 30 to 40 hours to form a first solid e) grinding said first solid to form a second powder f) pressing said second powder into a second solid g) flowing a gas composition_ through said furnace containing said second solid, said gas composition comprising of 1 to 15 atomic percent hydrogen and 85 to 99 atomic percent argon h) heating said furnace at approximately 1 to 5 C/minute from room temperature to between 665°C to 685°C and holding said furnace at between 665°C to 685°C for between 1 to 8 hours.
机译:本发明涉及一种制备品质因数ZT大于1.0的式为InXCo4Sb12(0 <x <1)的热电组合物的方法以及通过该方法制备的组合物。该方法包括:a)混合铟,钴和锑的粉末以形成粉末的混合物,使得在所述粉末混合物中存在0.006-0.030原子百分比的铟,0.242-0.248原子百分比的钴和0.727-0.745原子百分比的锑b )使气体组合物流过装有所述粉末混合物的熔炉,所述气体组合物包含1至15原子百分比的氢和85至99原子百分比的氩气c)以约1至5 C /分钟的速度从室温将加热炉加热至590°C至620°C并在590°C至620°C的温度下保持十至十四小时d)进一步以约1-5°C /分钟的速度将所述炉子加热至665°C至685°C所述炉在665℃至685℃下加热30至40小时以形成第一固体e)研磨所述第一固体以形成第二粉末f)将所述第二粉末压制成第二固体g)使气体成分和低压棒流动;通过包含所述第二固体的所述炉子,所述气体组合物包含1至15原子百分比的氢和85至99原子百分比的氩气h)以大约1至5℃/分钟的速率将所述炉从室温加热至665℃至685℃之间。并将所述炉在665℃至685℃之间保持1至8小时。

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