Tetrahedrite Thermoelectrics: From Fundamental Science to Facile Synthesis

Daniel P. Weller, D. Morelli
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引用次数: 6

Abstract

Thermoelectric materials have a long and storied history in the research and development of semiconductor materials, being the first such class of materials to be investigated. Thermoelectric may be used to convert heat to electricity or, alternatively, to liberate or absorb heat upon electrical excitation. They thus find application in thermoelectric generators for converting heat from a primary source or a waste stream to useful electrical power, and as solid state heating and cooling devices. In spite of their great potential in such important applications, thermoelectrics have suffered from a number of drawbacks that have hindered their utilization on a large scale. Chief among these is the fact that most high performance thermoelectric materials are comprised of elements that are in relatively low abundance. Additionally, their synthesis typically involves complex and multi-step processes, hindering manufacturability. Thermoelectric materials derived from Earth-abundant sources are thus of strong current interest, from both scientific and economic points of view. One of these, the family of semiconductors based on tetrahedrite compounds, has generated enormous interest over the last decade due to not only its potential low cost, but also for its fascinating science. In this review, we summarize the state of the art of tetrahedrite as a thermoelectric, with special emphasis on the relationship between crystal structure and bonding in the crystal and its unusually low lattice thermal conductivity; on its fascinating electronic structure; and on the wide array of compositions that have been synthesized and whose thermoelectric properties have been studied. We further highlight some rapid and facile synthesis techniques that have been developed for these compounds which, in combination with their potential low material cost, may open the door to widespread application of these fascinating materials.
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四面体热电体:从基础科学到简易合成
热电材料在半导体材料的研究和发展中有着悠久而传奇的历史,是第一类被研究的材料。热电可用来将热转化为电,或者,也可用来在电激发时释放或吸收热。因此,它们在热电发电机中得到了应用,用于将热量从初级热源或废液流转化为有用的电能,并作为固态加热和冷却装置。尽管热电在如此重要的应用中具有巨大的潜力,但热电仍然存在许多缺点,阻碍了它们的大规模应用。其中最主要的是,大多数高性能热电材料是由丰度相对较低的元素组成的。此外,它们的合成通常涉及复杂和多步骤的过程,阻碍了可制造性。因此,从科学和经济的角度来看,来自地球上丰富资源的热电材料是当前的强烈兴趣。其中之一,基于四面体化合物的半导体家族,在过去十年中引起了巨大的兴趣,不仅因为其潜在的低成本,而且因为其迷人的科学。在这篇综述中,我们总结了作为热电材料的四面体的研究现状,特别强调了晶体结构与晶体中键合的关系及其异常低的晶格导热系数;论其迷人的电子结构;以及已经合成的各种各样的化合物,它们的热电性质已经被研究过了。我们进一步强调了这些化合物的一些快速和简单的合成技术,结合它们潜在的低材料成本,可能为这些迷人的材料的广泛应用打开大门。
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