Effect of excess antimony on TE-properties of cobalt-antimony based skutterudite materials prepared by gas atomizing and sintering process

H. Uchida, A. Kasama, Y. Itsumi, K. Matsubara
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Abstract

In order to construct the mass production process of thermoelectric materials that accomplish wide range supply for various industrial fields, in previous study, gas atomizing and sintering process was investigated for cobalt-antimony based Skutterudite materials. It was found that the combination process of gas atomizing and sintering process is useful for mass production of high quality thermoelectric materials. Because those process is simple without mixing or grinding process and any kind of materials can be made as far as they can be melted in a same crucible in a same time. The mean diameter of gas atomized powder is less than 100 m, and also the inner structure of them is fine including every necessary element. Accordingly gas atomized powder can be sintered in a short time by both methods of spark plasma sintering and hot press sintering. Thermoelectric properties of materials that were made in this process were compared with the same kind of material which was made in laboratory scale. Substituted type materials attained almost aimed value of ZT, however filled type material could not get the same ZT value which was made in laboratory scale. One of the main reasons of low ZT value of p-type was considered to be concerned with excess antimony owing to large-scale production. Another reason was considered to be oxide effect that was introduced in the process of gas atomizing. These factors seem to be also important for n-type materials to get higher properties.
过量锑对气相雾化烧结钴锑基方钨矿材料te性能的影响
为了构建广泛供应于各个工业领域的热电材料的量产工艺,在以往的研究中,对钴锑基方钨矿材料进行了气雾化和烧结工艺的研究。发现气体雾化与烧结相结合是大批量生产高质量热电材料的有效方法。因为这些过程很简单,不需要混合或研磨过程,任何种类的材料都可以在同一坩埚内熔化。气体雾化粉末的平均直径小于100 m,其内部结构精细,包括各种必要的元素。因此,采用火花等离子烧结和热压烧结两种方法均可在短时间内烧结出气体雾化粉末。并与实验室生产的同类材料的热电性能进行了比较。替代型材料的ZT几乎达到了目标值,而填充型材料的ZT却不能达到实验室规模的目标值。认为p型ZT值低的主要原因之一与大规模生产造成的锑过剩有关。另一个原因被认为是气体雾化过程中引入的氧化效应。这些因素似乎对n型材料获得更高的性能也很重要。
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