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Solid-Liquid Interdiffusion (SLID) Bonding of p-Type Skutterudite Thermoelectric Material Using Al-Ni Interlayers

机译:使用Al-Ni中间层的p型方钴矿热电材料的固液互扩散(SLID)键

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摘要

Over the past few years, significant progress towards implementation of environmentally sustainable and cost-effective thermoelectric power generation has been made. However, the reliability and high-temperature stability challenges of incorporating thermoelectric materials into modules still represent a key bottleneck. Here, we demonstrate an implementation of the Solid-Liquid Interdiffusion technique used for bonding Mmy(Fe,Co)4Sb12 p-type thermoelectric material to metallic interconnect using a novel aluminium–nickel multi-layered system. It was found that the diffusion reaction-controlled process leads to the formation of two distinct intermetallic compounds (IMCs), Al3Ni and Al3Ni2, with a theoretical melting point higher than the initial bonding temperature. Different manufacturing parameters have also been investigated and their influence on electrical, mechanical and microstructural features of bonded components are reported here. The resulting electrical contact resistances and apparent shear strengths for components with residual aluminium were measured to be (2.8 ± 0.4) × 10−5 Ω∙cm2 and 5.1 ± 0.5 MPa and with aluminium completely transformed into Al3Ni and Al3Ni2 IMCs were (4.8 ± 0.3) × 10−5 Ω∙cm2 and 4.5 ± 0.5 MPa respectively. The behaviour and microstructural changes in the joining material have been evaluated through isothermal annealing at hot-leg working temperature to investigate the stability and evolution of the contact.
机译:在过去的几年中,在实现环境可持续和具有成本效益的热电发电方面已经取得了重大进展。然而,将热电材料结合到模块中的可靠性和高温稳定性挑战仍然是关键瓶颈。在这里,我们演示了使用新型铝镍多层系统将Mmy(Fe,Co)4Sb12 p型热电材料粘合到金属互连的固液互扩散技术的实现。发现扩散反应受控过程导致形成两种不同的金属间化合物(IMC),即Al3Ni和Al3Ni2,其理论熔点高于初始键合温度。还研究了不同的制造参数,并在此报道了它们对粘合部件的电气,机械和微观结构特征的影响。测得的残留铝成分的电接触电阻和表观剪切强度分别为(2.8±0.4)×10 −5 Ω∙cm 2 和5.1±0.5 MPa铝完全转化为Al3Ni和Al3Ni2时,IMC分别为(4.8±0.3)×10 −5 Ω∙cm 2 和4.5±0.5 MPa。通过在热腿工作温度下进行等温退火,评估了连接材料的行为和微观结构变化,以研究接触的稳定性和演变。

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