论文标题

常规的半身合金提高了最先进的热电特性

Conventional Half-Heusler Alloys Advance State-of-the-Art Thermoelectric Properties

论文作者

Mitra, Mousumi, Benton, Allen, Akhanda, Md Sabbir, Qi, Jie, Zebarjadi, Mona, Singh, David J., Poon, S. Joseph

论文摘要

半身(HHH)阶段已成为用于功率转换的热稳定和无毒热电材料的广泛关注。迄今为止,研究最多的合金将HF,ZR和TI用作基本组件。这些合金可以通过使用纳米结构和新颖的成分来实现更大的ZT,达到了HH合金的热电性能,从而提高了HH合金的热电性能,从而提高了HH合金的热电性能。本文中,我们报告说,用于常规HFZR的半身合金的传统合金技术也可以导致出色的ZT。具体而言,我们介绍了良好的P型HF0.3ZR0.7COSN0.3SB0.7,此前据报道具有ZT〜0.8,在以小于1的位置共鸣。在SN/SB位点上的金属al%,在980 K时吹捧着一个显着的ZT接近1.5。这是通过显着增加功率因数的显着增加约65%的,并且在高温下的热导率降低了约13%。这些有利的热电特性是根据旨在增强Seebeck系数的Fermi能量附近状态密度的局部异常讨论的,如第一原理计算所示,以及高度异构晶粒结构的出现,可以在不同的长度范围内散射声子,从而有效地抑制了热传导性。因此,在单个抛物线带模型中,有效质量从〜7显着提高到10ME,这与第一原理计算结果一致。通过常规和非复杂方法在经常研究的半母夫妇合金中发现高ZT为在类似类型的合金中进一步发现开辟了一条新的道路。此外,可以合理地认为,这项研究将振兴探索常规合金系统中高热电性能的努力。

Half-Heusler (HH) phases have garnered much attention as thermally stable and non-toxic thermoelectric materials for power conversion. The most studied alloys to date utilize Hf, Zr, and Ti as the base components. These alloys can achieve a moderate dimensionless figure of merit, ZT, near 1. Recent studies have advanced the thermoelectric performance of HH alloys by employing nanostructures and novel compositions to achieve larger ZT, reaching as high as 1.5. Herein, we report that traditional alloying techniques applied to the conventional HfZr-based half-Heusler alloys can also lead to exceptional ZT. Specifically, we present the well-studied p-type Hf0.3Zr0.7CoSn0.3Sb0.7, previously reported to have a ZT~0.8, resonantly doped with less than 1 at. % metallic Al on the Sn/Sb site, touting a remarkable ZT near 1.5 at 980 K. This is achieved through a significant increase in power factor, by ~65%, and a notable but smaller decrease in thermal conductivity, by ~13%, at high temperatures. These favorable thermoelectric properties are discussed in terms of a local anomaly in the density of states near the Fermi energy designed to enhance the Seebeck coefficient, as revealed by first-principles calculations, as well as the emergence of a highly heterogeneous grain structure that can scatter phonons across different length scales, effectively suppressing the thermal conductivity. Consequently, the effective mass is significantly enhanced from ~ 7 to 10me within a single parabolic band model, consistent with the result from first-principles calculations. The discovery of high ZT in a commonly studied half-Heusler alloy through a conventional and non-complex approach opens a new path for further discoveries in similar types of alloys. Furthermore, it is reasonable to believe that the study will reinvigorate effort in exploring high thermoelectric performance in conventional alloy systems.

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