Thermal conductivity measurements of bulk thermoelectric materials

H. Wang, W. Porter, J. Sharp
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引用次数: 10

Abstract

Thermal conductivity is an important material property of the bulk thermoelectrics. To improve ZT a reduced thermal conductivity is always desired. However, there is no standard material for thermoelectrics and the test results, even on the same material, often show significant scatter. The scatter in thermal conductivity made reported ZT values uncertain and sometime unrepeatable. One of the reasons for the uncertainty is due to the microstructure differences resulting from sintering, heat treatment and other processing parameters. We selected commonly used bulk thermoelectric materials and conducted thermal conductivity measurements using the laser flash diffusivity and differential scanning calorimeter (DSC) systems. Thermal conductivity was measured as a function of temperature from room temperature to 500 K and back to room temperature. The effect of thermal cycling on the bulk thermoelectric was studied. Combined with measurements on electrical resistivity and Seebeck coefficient, we show the use of a ZT map in selecting thermoelectrics. The commercial bulk material showed very good consistency and reliability compared to other bulk materials. Our goal is to develop a thermal transport properties database for the bulk thermoelectrics and make the information available to the research community and industry.
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块状热电材料的热导率测量
导热系数是体热电材料的一项重要性能。为了提高ZT,总是需要降低热导率。然而,没有热电学的标准材料,即使在相同的材料上,测试结果也经常显示出显著的散射。热导率的分散使得报告的ZT值不确定,有时不可重复。不确定性的原因之一是由于烧结、热处理和其他加工参数造成的微观结构差异。我们选择了常用的块状热电材料,并使用激光闪光扩散率和差示扫描量热计(DSC)系统进行了热导率测量。热导率作为温度的函数被测量,从室温到500k,再回到室温。研究了热循环对体热电性能的影响。结合电阻率和塞贝克系数的测量,我们展示了在选择热电材料时ZT图的使用。与其他散装材料相比,商品散装材料具有很好的一致性和可靠性。我们的目标是为大块热电材料开发一个热输运特性数据库,并将这些信息提供给研究界和工业界。
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