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Mechanically Robust BiSbTe Alloys with Superior Thermoelectric Performance: A Case Study of Stable Hierarchical Nanostructured Thermoelectric Materials

机译:具有优异热电性能的机械坚固的BiSbTe合金:稳定的分层纳米结构热电材料的案例研究

摘要

Bismuth telluride based thermoelectric materials have been commercialized for a wide range of applications in power generation and refrigeration. However, the poor machinability and susceptibility to brittle fracturing of commercial ingots often impose significant limitations on the manufacturing process and durability of thermoelectric devices. In this study, melt spinning combined with a plasma-activated sintering (MS-PAS) method is employed for commercial p-type zone-melted (ZM) ingots of Bi_0.5Sb_1.5Te_3. This fast synthesis approach achieves hierarchical structures and in-situ nanoscale precipitates, resulting in the simultaneous improvement of the thermoelectric performance and the mechanical properties. Benefitting from a strong suppression of the lattice thermal conductivity, a peak ZT of 1.22 is achieved at 340 K in MS-PAS synthesized structures, representing about a 40% enhancement over that of ZM ingots. Moreover, MS-PAS specimens with hierarchical structures exhibit superior machinability and mechanical properties with an almost 30% enhancement in their fracture toughness, combined with an eightfold and a factor of six increase in the compressive and flexural strength, respectively. Accompanied by an excellent thermal stability up to 200 °C for the MS-PAS synthesized samples, the MS-PAS technique demonstrates great potential for mass production and large-scale applications of Bi_2Te_3 related thermoelectrics.
机译:碲化铋基热电材料已商业化,可广泛用于发电和制冷领域。然而,差的可加工性和对商业铸锭的脆性破裂的敏感性经常对热电装置的制造过程和耐久性施加明显的限制。在这项研究中,将熔融纺丝与等离子活化烧结(MS-PAS)方法结合用于Bi_0.5Sb_1.5Te_3的商用p型区域熔融(ZM)铸锭。这种快速的合成方法可实现分层结构和原位纳米级沉淀,从而同时提高了热电性能和机械性能。得益于对晶格热导率的强烈抑制,MS-PAS合成结构中的340 K处ZT峰值达到1.22,比ZM铸锭高40%。此外,具有分层结构的MS-PAS样品具有出色的可加工性和机械性能,其断裂韧性提高了近30%,抗压强度和抗弯强度分别提高了8倍和6倍。 MS-PAS合成样品具有高达200°C的出色热稳定性,证明了Bi_2Te_3相关热电学的大规模生产和大规模应用的巨大潜力。

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