Alleno E, Bérardan D, Byl C, Candolfi C, Daou R, Decourt R, Guilmeau E, Hébert S, Hejtmanek J, Lenoir B, Masschelein P, Ohorodnichuk V, Pollet M, Populoh S, Ravot D, Rouleau O, Soulier M
Institut de Chimie et Matériaux Paris-Est, UMR CNRS-UPEC 7182, 2-8, rue Henri Dunant, 94320 Thiais, France.
SP2M, ICMMO (CNRS UMR 8182), Université Paris-Sud, 91405 Orsay, France.
Rev Sci Instrum. 2015 Jan;86(1):011301. doi: 10.1063/1.4905250.
A round robin test aiming at measuring the high-temperature thermoelectric properties was carried out by a group of European (mainly French) laboratories (labs). Polycrystalline skutterudite Co0.97Ni0.03Sb3 was characterized by Seebeck coefficient (8 labs), electrical resistivity (9 labs), thermal diffusivity (6 labs), mass volume density (6 labs), and specific heat (6 labs) measurements. These data were statistically processed to determine the uncertainty on all these measured quantities as a function of temperature and combined to obtain an overall uncertainty on the thermal conductivity (product of thermal diffusivity by density and by specific heat) and on the thermoelectric figure of merit ZT. An increase with temperature of all these uncertainties is observed, in agreement with growing difficulties to measure these quantities when temperature increases. The uncertainties on the electrical resistivity and thermal diffusivity are most likely dominated by the uncertainty on the sample dimensions. The temperature-averaged (300-700 K) relative standard uncertainties at the confidence level of 68% amount to 6%, 8%, 11%, and 19% for the Seebeck coefficient, electrical resistivity, thermal conductivity, and figure of merit ZT, respectively. Thermal conductivity measurements appear as the least accurate. The moderate value of the temperature-averaged relative expanded (confidence level of 95%) uncertainty of 17% on the mean of ZT is essential in establishing Co0.97Ni0.03Sb3 as a high temperature standard n-type thermoelectric material.
一组欧洲(主要是法国)实验室进行了旨在测量高温热电性能的循环测试。通过塞贝克系数(8个实验室)、电阻率(9个实验室)、热扩散率(6个实验室)、质量体积密度(6个实验室)和比热(6个实验室)测量对多晶方钴矿Co0.97Ni0.03Sb3进行了表征。对这些数据进行统计处理,以确定所有这些测量量随温度变化的不确定度,并将其合并以获得热导率(热扩散率与密度和比热的乘积)和热电优值ZT的总体不确定度。观察到所有这些不确定度都随温度增加,这与温度升高时测量这些量的难度增加相一致。电阻率和热扩散率的不确定度很可能主要由样品尺寸的不确定度决定。在68%置信水平下,塞贝克系数、电阻率、热导率和优值ZT的温度平均(300 - 700 K)相对标准不确定度分别为6%、8%、11%和19%。热导率测量结果似乎最不准确。ZT平均值的温度平均相对扩展(95%置信水平)不确定度为17%,这一适中值对于将Co0.97Ni0.03Sb3确立为高温标准n型热电材料至关重要。