Solubility Limit and Annealing Effects on the Microstructure & Thermoelectricproperties of Fe 2V 1-XTa xAl 1-YSi y Heusler Compounds

F. Garmroudi, M. Parzer, A. Riss, N. Reumann, B. Hinterleitner, K. Tobita, Y. Katsura, K. Kimura, T. Mori, E. Bauer
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引用次数: 1

Abstract

Full-Heusler compounds with the composition Fe2V1-XTaxAl1-YSiy have recently shown to exhibit some of thehighest power factors reported so far for bulk materials due to the band convergence and band gap opening causedby the V/Ta substitution. Therefore, the solubility limit of Ta and Si regarding the stability of the L21 phase isinvestigated in this study. The crystal structure and microstructure of a large number of samples is probed by X-raydiffraction as well as scanning electron microscopy and energy dispersive X-ray analysis. The results show that the Al/Si substitution significantly hampers the solubility of Ta within the Heusler structure. Furthermore, Fe2V0.9Ta0.1Al and Fe2V0.95Ta0.05Al0.9Si0.1 reveal nanoscale impurity precipitates in the microstructure, together with diffuse contrasts that indicate a non-equilibrium metastable state. For that reason, different annealing conditions, varying the temperature and time, have been applied to the latter and the effect on the microstructure and thermoelectric properties is investigated. It is found that additional annealing leads to further phase segregation and grain growth of the impurity precipitates, which due to their metallic-like nature have a detrimental effect on the Seebeck coefficient. They can however effectively reduce the lattice thermal conductivity if the average grain size remains below the phonon mean free path. The thermoelectric efficiency in terms of the dimensionless gure of merit ZT is increased up to ZT = 0.3 - 0.34 at 300K which is beyond the values previously reported for Fe2VAl-based bulk materials.
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fe2v 1-XTa xAl 1-YSi y Heusler化合物的溶解度极限和退火对其微观结构和热电性能的影响
具有Fe2V1-XTaxAl1-YSiy组成的Full-Heusler化合物,由于V/Ta取代引起的能带收敛和带隙打开,显示出迄今为止报道的块状材料中最高的功率因数。因此,本研究考察了Ta和Si对L21相稳定性的溶解度限制。利用x射线衍射、扫描电镜和能量色散x射线分析对大量样品的晶体结构和微观结构进行了探测。结果表明,Al/Si取代明显阻碍了Ta在Heusler结构中的溶解度。此外,Fe2V0.9Ta0.1Al和Fe2V0.95Ta0.05Al0.9Si0.1在微观结构中显示出纳米级杂质沉淀,同时弥散对比表明非平衡亚稳态。为此,采用不同的退火条件,改变温度和时间,对后者进行了研究,并研究了其对微观结构和热电性能的影响。发现进一步退火导致杂质析出相进一步偏析和晶粒长大,由于其类金属性质,这对塞贝克系数有不利影响。然而,如果平均晶粒尺寸保持在声子平均自由程以下,它们可以有效地降低晶格热导率。在300K时,无因次质量系数ZT的热电效率增加到ZT = 0.3 - 0.34,这超出了以前报道的基于fe2valal的块状材料的值。
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