纳米晶铜瑀的热电特性研究

M. Kubenova, K. Kuterbekov, M. Balapanov, R. Ishembetov, G. D. Kabdrakhimova, R. Alina, M. Tatay, R. Ildos
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引用次数: 0

摘要

现代研究的目标是开发高效、低成本和环保的燃料电池,这在很大程度上取决于相应催化剂材料的特性,而催化剂材料是燃料电池最重要的组成部分。基于金属卤化物(主要是 S 基)的催化剂在加速氧还原反应方面的活性可与 H2SO4 中铂的活性相媲美。这项研究采用了粉末材料压制技术,并获得了体积样品。获得了平均粒径为(50-100)纳米的纳米分散粉末馏分。所研究的Сu2S0.5Te0.5 型合金的阳离子亚晶格缺陷较低,因此获得了热电系数(约 0.08 mV/K)。研究发现,晶粒尺寸的减小会导致所有研究样品的电子电导率显著降低。本文介绍了 Cu2S0.5Te0.5 三元合金的热电性能研究结果。就所研究的成分而言,与大晶体样品相比,热导率降低了 (25-30)%,热辐射系数略有增加。热导率在 (0.3-1.1) W m-1 K-1 范围内较低,电导率高于 1000 欧姆-1 厘米-1。所研究的样品 Cu2S0.5Te0.5 - 400 °C 时的热电效率(ZT = 0.25),这使我们有希望通过选择最佳合金来改善这种成分样品的特性,使其达到实用热电设备的可接受值。
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Investigation of thermoelectric properties of nanocrystalline copper chalcogenides
Modern research efforts are aimed at developing fuel cells characterized by high efficiency, low cost and environmental friendliness, which largely depend on the properties of the corresponding catalyst materials ― the most important components of the fuel cell. Catalysts based on metal chalcogenides, predominantly S based, have activity in accelerating the oxygen reduction reaction comparable to the activity of Pt in H2SO4. The work uses the technique of compacting powder materials and obtained volumetric samples. Nanodisperse powder fractions with an average particle size of (50–100) nm were obtained. The values of the thermo-emf coefficient (about 0.08 mV/K) were obtained for the studied alloy with low defects in the cation sublattice of the Сu2S0.5Te0.5 type. It was found that a decrease in grain size leads to a significant decrease in electronic conductivity for all studied samples. The paper presents the results of a study of the thermoelectric properties of the Cu2S0.5Te0.5 triple alloy. For the studied composition, a decrease in thermal conductivity by (25‒30)% and a slight increase in the thermal emf coefficient compared with large–crystal samples were obtained. Low thermal conductivity was found in the range (0.3–1.1) W m-1 K-1 with a conductivity above 1000 ohms-1cm-1. For the studied sample Cu2S0.5Te0.5  ― thermoelectric efficiency (ZT = 0.25) at 400 °C, which allows us to hope for the possibility of improving the characteristics of samples of this composition to acceptable values for practical thermoelectric devices by selecting the optimal alloying.
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