首页> 外文期刊>Journal of nanomaterials >Effect of Mechanical Deformation on Thermoelectric Properties of p-Type(Bi0.225Sb0.775)2Te3Alloys
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Effect of Mechanical Deformation on Thermoelectric Properties of p-Type(Bi0.225Sb0.775)2Te3Alloys

机译:机械变形对p型(Bi0.225Sb0.775)2Te3合金热电性能的影响

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摘要

The effect of mechanical deformation and annealing on thermoelectric properties of p-type (Bi0.225Sb0.775)Te3was performed. The ingots were prepared by melting, followed by quenching method using source materials with compositions of (Bi0.225Sb0.775)2Te3. Rectangular shaped specimens (5×5×12 mm3) were cut from ingots and then cold-pressed at 700 MPa for 2 to 20 times by changing the press direction perpendicular to previous one. The cold-pressed samples have been annealed in a quartz ampoule at 573 K. The grain size of the samples was controlled by the number of cold-pressing process and annealing time. Fine grain structure with a grain size of not more than 10 μm is obtained in highly deformed samples. The Seebeck coefficient of the deformed samples were gradually increased with annealing and converged to the similar value of about 225 μV/K after 30 hrs. The small grain size in highly deformed sample enables a rapid increase of Seebeck coefficient with annealing time (~2 hrs.), indicating that the thermal energy needed to recrystallize in highly deformed specimens is lower than that in low deformed specimens.Zvalues are rapidly increased with annealing time especially in highly deformed alloys, and converge to about3.0×10−3/K at room temperature. A higher thermoelectric performance could be expected by the optimization of composition and microstructural adjustment. The present study experimentally demonstrates a simple and cost-effective method for fabricating Bi-Te-based alloys with higher thermoelectric performance.
机译:进行了机械变形和退火对p型(Bi0.225Sb0.775)Te3热电性能的影响。通过熔化,然后使用组成为(Bi0.225Sb0.775)2Te3的原料淬火法制备铸锭。从铸锭上切下矩形试样(5×5×12 mm3),然后通过改变垂直于前一方向的压制方向,在700 MPa下冷压2至20倍。将冷压样品在石英安瓿瓶中于573 K退火,样品的晶粒大小由冷压过程的数量和退火时间控制。在高度变形的样品中获得的晶粒尺寸不超过10μm。退火后,变形样品的塞贝克系数逐渐增加,并在30?hrs后收敛到大约225?μV/ K的相似值。高变形样品的小晶粒尺寸可以使Seebeck系数随退火时间(〜2 hrs。)的快速增加,这表明高变形样品的重结晶所需的热能低于低变形样品的Z.值迅速增加随着退火时间的增加,特别是在高度变形的合金中,并且在室温下收敛至约3.0×10-3 / K。通过优化成分和微结构调整,可以期待更高的热电性能。本研究实验证明了一种简单且具有成本效益的方法来制造具有更高热电性能的Bi-Te基合金。

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