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On the Phase Separation in n-Type Thermoelectric Half-Heusler Materials

机译:关于n型热电半霍斯勒材料的相分离

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摘要

Half-Heusler compounds have been in focus as potential materials for thermoelectric energy conversion in the mid-temperature range, e.g., as in automotive or industrial waste heat recovery, for more than ten years now. Because of their mechanical and thermal stability, these compounds are advantageous for common thermoelectric materials such as Bi2Te3, SiGe, clathrates or filled skutterudites. A further advantage lies in the tunability of Heusler compounds, allowing one to avoid expensive and toxic elements. Half-Heusler compounds usually exhibit a high electrical conductivity σ, resulting in high power factors. The main drawback of half-Heusler compounds is their high lattice thermal conductivity. Here, we present a detailed study of the phase separation in an n-type Heusler materials system, showing that the TixZryHfzNiSn system is not a solid solution. We also show that this phase separation is key to the thermoelectric high efficiency of n-type Heusler materials. These results strongly underline the importance of phase separation as a powerful tool for designing highly efficient materials for thermoelectric applications that fulfill the industrial demands of a thermoelectric converter.
机译:在过去的十年中,半霍斯勒化合物一直是中温范围内热电能量转换的潜在材料,例如在汽车或工业废热回收中。由于它们的机械和热稳定性,这些化合物对于常见的热电材料(例如Bi2Te3,SiGe,包合物或填充方钴矿)具有优势。另一个优点在于Heusler化合物的可调性,可以避免昂贵和有毒的元素。 Half-Heusler化合物通常显示出高电导率σ,从而导致高功率因数。半霍斯勒化合物的主要缺点是它们的高晶格导热率。在这里,我们对n型Heusler材料系统中的相分离进行了详细研究,表明TixZryHfzNiSn系统不是固溶体。我们还表明,这种相分离是n型Heusler材料热电高效的关键。这些结果强烈强调了相分离作为设计热电应用中满足热电转换器工业需求的高效材料的有力工具的重要性。

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