放电等离子烧结
材料科学
热电效应
热导率
声子散射
热电材料
功勋
凝聚态物理
熔融纺丝
烧结
光电子学
冶金
复合材料
纺纱
热力学
物理
作者
Wanthana Silpawilawan,Sora‐at Tanuslip,Yuji Ohishi,Hiroaki Muta,Ken Kurosaki
标识
DOI:10.1002/pssa.202000419
摘要
Half‐Heusler compounds with 18 valence electron count show a large thermoelectric power factor. However, the thermal conductivity is high, so if the thermal conductivity can be reduced, the thermoelectric figure of merit zT can be enhanced. The key point to reduce the thermal conductivity is effective phonon scattering. Nanostructuring is a well‐known method of introducing phonon scattering centers by creating high‐density grain boundaries in nanoscale. Herein, NbFeSb, which is one of the best p‐type half‐Heusler compounds in thermoelectrics, is focused on. Nanostructured bulk Nb 0.9 Ti 0.1 FeSb is synthesized by melt spinning followed by spark plasma sintering. The cooling speed during melt spinning is changed to obtain nanostructures with different sizes. This study reveals that the zT at high temperatures is enhanced by nanostructuring. The nanostructured Nb 0.9 Ti 0.1 FeSb shows an ≈20% higher zT value at 1073 K than the non‐nanostructured one, mainly due to the effective reduction of the thermal conductivity.
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