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首页> 外文期刊>Journal of Electronic Materials >Aqueous Chemical Synthesis and Consolidation of Size-Controlled Bi2Te3 Nanoparticles for Low-Cost and High-Performance Thermoelectric Materials
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Aqueous Chemical Synthesis and Consolidation of Size-Controlled Bi2Te3 Nanoparticles for Low-Cost and High-Performance Thermoelectric Materials

机译:用于低成本和高性能热电材料的尺寸控制Bi2Te3纳米粒子的含水化学合成及固结

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摘要

Bi2Te3 nanoparticles (NPs) were synthesized with controlled mean diameters of 58 nm, 82 nm, and 100 nm using an aqueous chemical reduction, in which ascorbic acid was used instead of the commonly employed toxic reducing agent. In general, organic capping agents remained on the Bi2Te3 NP surfaces, which prevented the sintering of Bi2Te3 NPs and affected their thermoelectric properties. Not only the capping agent, but also water from the synthesis process, remained on the Bi2Te3 NPs even after their consolidation by spark plasma sintering. Consequently, evaporation of the water led to the collapse of sintered Bi2Te3 NPs when heated above 100 degrees C. After the complete removal of the surface impurities and water, the sintered Bi2Te3 NPs became stable. To achieve enhanced thermoelectric properties, a high relative density of similar to 96% was achieved in the sintered Bi2Te3 NPs without large grain growth by optimizing the sintering temperature and holding time. Subsequently, their thermoelectric properties showed that zT of the sintered Bi2Te3 NPs 100 nm in size is higher (0.41 at 390 K) than those of smaller sizes (58 nm and 82 nm). Finally, the effect of grain size, particle size and density on their thermoelectric properties is discussed.
机译:的Bi2Te3纳米颗粒(NP)为58纳米,82纳米和100纳米的控制平均直径使用水性化学还原,其中使用代替通常使用有毒还原剂抗坏血酸合成的。通常,有机封端剂保留在所述Bi2Te3 NP表面,这防止了的Bi2Te3 NP的烧结和影响了他们的热电性能。不仅从合成过程中的封端剂,而且水,甚至放电等离子烧结其合并后留在所述Bi2Te3纳米颗粒。因此,当100度以上下加热完全去除表面的杂质和水后导致烧结的Bi2Te3 NP的崩溃的水的蒸发,烧结的Bi2Te3的NP变得稳定。为了实现增强的热电性能,类似于96%的高相对密度在烧结的Bi2Te3的NP,通过优化烧结温度和保温时间实现而没有大的晶粒生长。随后,其热电性能表明,在尺寸上烧结的Bi2Te3的NP为100nm的zT值较高(0.41在390 K)比那些更小的尺寸(58 nm和82纳米)。最后,讨论晶粒尺寸,颗粒尺寸和密度上的热电性能的效果。

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