Process-microstructure relationship of laser processed thermoelectric material Bi2Te3

Cagri Oztan, Bengisu Şişik, Ryan Welch, S. LeBlanc
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引用次数: 1

Abstract

Additive manufacturing allows fabrication of custom-shaped thermoelectric materials while minimizing waste, reducing processing steps, and maximizing integration compared to conventional methods. Establishing the process-structure-property relationship of laser additive manufactured thermoelectric materials facilitates enhanced process control and thermoelectric performance. This research focuses on laser processing of bismuth telluride (Bi2Te3), a well-established thermoelectric material for low temperature applications. Single melt tracks under various parameters (laser power, scan speed and number of scans) were processed on Bi2Te3 powder compacts. A detailed analysis of the transition in the melting mode, grain growth, balling formation, and elemental composition is provided. Rapid melting and solidification of Bi2Te3 resulted in fine-grained microstructure with preferential grain growth along the direction of the temperature gradient. Experimental results were corroborated with simulations for melt pool dimensions as well as grain morphology transitions resulting from the relationship between temperature gradient and solidification rate. Samples processed at 25 W, 350 mm/s with 5 scans resulted in minimized balling and porosity, along with columnar grains having a high density of dislocations.
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激光加工热电材料Bi2Te3的工艺-微观结构关系
与传统方法相比,增材制造可以制造定制形状的热电材料,同时最大限度地减少浪费,减少加工步骤,并最大限度地提高集成度。建立激光增材制造热电材料的工艺-结构-性能关系有助于提高热电材料的工艺控制和热电性能。本研究的重点是激光加工碲化铋(Bi2Te3),这是一种成熟的低温热电材料。在不同参数(激光功率、扫描速度和扫描次数)下,在Bi2Te3粉末压块上加工了单熔体轨迹。详细分析了熔炼方式的转变、晶粒生长、球化形成和元素组成。Bi2Te3的快速熔化和凝固形成细晶组织,晶粒沿温度梯度方向优先长大。实验结果与温度梯度和凝固速率关系引起的熔池尺寸和晶粒形态转变的模拟结果相吻合。样品在25 W, 350 mm/s下进行5次扫描,导致球化和孔隙率最小化,以及具有高密度位错的柱状晶粒。
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