首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Improving Thermoelectric Properties of Chemically Synthesized Bi2Te3-Based Nanocrystals by Annealing
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Improving Thermoelectric Properties of Chemically Synthesized Bi2Te3-Based Nanocrystals by Annealing

机译:通过退火改善化学合成的Bi2Te3基纳米晶体的热电性能

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摘要

The power factors of chemically synthesized Bi2Te3 and Bi_(0.5)Sb_(1.5)Te3 nanocrystals (NCs) were improved up to 2.4 and 7.8μW cm~(-1) K~(-2), respectively, which are significantly higher than previously reported values for chemically synthesized Bi2Te3 NCs and even comparable to the recently reported highest power factor of 5 μW cm~(-1) K~(-2) for Bi2Te3 NCs consolidated by spark plasma sintering. This improvement was achieved by annealing the NCs under argon protection, and the crystal structures and morphologies of these annealed NCs were characterized via XRD, SEM, and TEM measurements. The temperature-dependent thermoelectric properties of these modified NCs were explored on cold-pressed pellets of NCs. Improvement of the thermoelectric performances of the pellets resulted primarily from an increase in electrical conductivity (σ), while only weakly increasing the lattice thermal conductivity (k_L), which was still kept lower than bulk values. Hall carrier concentration studies suggest that the improvement of the electrical conductivity is caused primarily by modification of the charge carrier mobility rather than the carrier concentration. A mechanism is proposed to explain a large increase of electrical conductivity by annealing related to a decrease of activation energy for the mobility after the removal of organic capping ligands through annealing.
机译:化学合成的Bi2Te3和Bi_(0.5)Sb_(1.5)Te3纳米晶体(NCs)的功率因数分别提高到2.4和7.8μWcm〜(-1)K〜(-2),明显高于以前的功率因数报道了化学合成的Bi2Te3 NC的值,甚至可以与最近报道的通过火花等离子体烧结固结的Bi2Te3 NC的最高功率因数5μWcm〜(-1)K〜(-2)相比。通过在氩气保护下对NC进行退火可以实现这一改进,并通过XRD,SEM和TEM测量来表征这些退火NC的晶体结构和形态。在NCs的冷压颗粒上探索了这些改性NCs随温度变化的热电特性。粒料的热电性能的改善主要是由于电导率(σ)的增加,而只是微弱地增加了晶格的热导率(k_L),其仍然保持低于本体值。霍尔载流子浓度研究表明,电导率的提高主要是由于电荷载流子迁移率的改变而不是载流子浓度引起的。提出了一种机制来解释通过退火与通过活化去除有机封端配体后用于迁移率的活化能的降低有关的退火引起的电导率的大幅增加。

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