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首页> 外文期刊>Intermetallics >Carbon observation by electron energy-loss spectroscopy and thermoelectric properties of graphite added bismuth antimony telluride prepared by mechanical alloying-hot pressing
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Carbon observation by electron energy-loss spectroscopy and thermoelectric properties of graphite added bismuth antimony telluride prepared by mechanical alloying-hot pressing

机译:通过机械合金化 - 热压制备的石墨加入铋碳化酯的电子能损光谱和热电性能的碳观察

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摘要

The effects of additional graphite in (Bi0.3Sb1.7Te3.1)(1-x)C-x (x = 0, 0.004, 0.012, 0.032, 0.06, and 0.12) prepared by mechanical alloying followed by hot pressing were investigated. Carbon was added to obtain a low thermal conductivity via phonon scattering. The samples were examined by X-ray diffraction, scanning electron microscopy (SEM), transmission electron microscopy (TEM), energy-dispersive X-ray spectroscopy, and electron energy-loss spectroscopy (EELS). EELS can be used to investigate the distributions of light elements such as carbon. The diffraction peaks indicated a single-phase Bi2Te3-Sb2Te3 solid solution. All the specimens were p type semiconductors and SEM and TEM images showed dense without coarse grains. Agglomeration along the grain boundaries and inhomogeneous dispersion of carbon was observed by EELS. (Bi0.3Sb1.7Te3.1)(0.88)C-0.12 grains wrapped by carbon layers of thickness approximately 50 nm were observed. The thermal conductivity of (Bi0.3Sb1.7Te3.1)(1-x)C-x increased with increasing x. It is considered that the presence of a large amount of carbon affected the thermal conductivity of the Bi0.3Sb1.7Te3.1 matrix because the thermal conductivity of carbon is much higher than that of Bi0.3Sb1.7Te3.1 and the carbon was dispersed inhomogeneously. Bi0.3Sb1.7Te3.1 without additional graphite had a maximum dimensionless figure of merit ZT = 1.1. The ZT value decreased, and varied from 0.8 to 1.0, for (Bi0.3Sb1.7Te3.1)(1-x)C-x. The results show that inhomogeneously dispersed carbon did not improve the thermoelectric properties of Bi0.3Sb1.7Te3.1.
机译:(X = 0,0.004,0.012,0.032,0.06和0.12)通过机械合金化制备,随后热压进行了调查附加石墨在(Bi0.3Sb1.7Te3.1)(1-x)的C-X的影响。加入碳以通过声子散射获得低导热率。通过X射线衍射检查样品,扫描电子显微镜(SEM),透射电子显微镜(TEM),能量分散X射线光谱和电子能损光谱(EEL)。鳗鱼可用于研究诸如碳的光元素的分布。衍射峰表明单相Bi2Te 3-Sb2Te 3固溶体。所有标本都是P型半导体,SEM和TEM图像显示致密,没有粗晶粒。鳗鱼观察到沿晶界和碳的不均匀分散的聚集。 (BI0.3SB1.7te3.1)(0.88)被厚度碳层包裹的C-0.12颗粒被观察到约50nm。 (Bi0.3sb1.7te3.1)(1-x)c-x的导热率随着x的增加而增加。认为大量碳的存在影响了BI0.3SB1.7Te3.1基质的导热率,因为碳的导热率远高于Bi0.3sb1.7te3.1的热导率,并且碳被分散不均匀地。 Bi0.3sb1.7te3.1没有额外的石墨,最大无量纲的优点Zt = 1.1。 ZT值降低,变化为0.8至1.0,for(bi0.3sb1.7te3.1)(1-x)c-x。结果表明,不均匀分散的碳没有改善Bi0.3sb1.7te3.1的热电性能。

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