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PbTe-PbSnS_2 thermoelectric composites: low lattice thermal conductivity from large microstructures

机译:PbTe-PbSnS_2热电复合材料:大型微结构的低晶格热导率

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摘要

Recent advances in the field of thermoelectrics have shown embedding appropriate nanostructures can significantly suppress the lattice thermal conductivity and therefore enhance ZT. Here we report a new class of thermoelectric composites of PbTe-PbSnS2- PbSnS2 is a naturally layered material (space group Pnma) comprised of Sn-Pb bilayers approximately 0.6 nm in thickness. High resolution transmission electron microscopy reveals the PbSnS_2 segregates into coherent lamellar structures 50-100 nm in thickness that extend 100 nm to 15 μm in length. Despite the relatively large size of the PbSnS_2 precipitates, we find that incorporation of PbSnS_2 in PbTe results in significant reduction in lattice thermal conductivity to 0.4-0.65 W m~(-1) K~(-1) over the temperature range 300-700 K, a reduction of 50-70% over bulk PbTe. As a result, a maximum ZTof 1.1 is obtained for ingot samples of the PbTe-PbSnS2 6% composition. We provide extensive characterization of the physical, structural, and chemical properties of this materials system including powder X-ray diffraction, infrared reflectivity, scanning and transmission electron microscopy, and thermoelectric properties measurements. The synthesis method is simple and general, opening possibilities for similar systems to yield materials exhibiting low lattice thermal conductivity without it being necessary to embed nanoscale (5-20 nm) features.
机译:热电学领域的最新进展表明,嵌入合适的纳米结构可以显着抑制晶格热导率,从而提高ZT。在这里,我们报告了一类新型的PbTe-PbSnS2-热电复合材料。PbSnS2是一种天然层状材料(空间群Pnma),由厚度约为0.6 nm的Sn-Pb双层组成。高分辨率透射电子显微镜显示PbSnS_2分离成厚度为50-100 nm的连贯的层状结构,延伸的长度为100 nm至15μm。尽管PbSnS_2沉淀的尺寸相对较大,但我们发现在PbTe中掺入PbSnS_2会导致在300-700的温度范围内晶格热导率显着降低至0.4-0.65 W m〜(-1)K〜(-1) K,比块状PbTe减少50-70%。结果,对于6%组成的PbTe-PbSnS2的铸锭样品,获得的最大ZTof为1.1。我们提供此材料系统的物理,结构和化学性质的广泛表征,包括粉末X射线衍射,红外反射率,扫描和透射电子显微镜以及热电性质测量。合成方法既简单又通用,为类似系统提供了可能,以显示低晶格热导率的材料而无需嵌入纳米级(5-20​​ nm)特征。

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  • 来源
    《Energy & environmental science》 |2012年第9期|p.8716-8725|共10页
  • 作者单位

    Department of Chemistry, Northwestern University, Evanston, IL 60208,USA;

    Department of Chemistry, Northwestern University, Evanston, IL 60208,USA,Physics Department, Aristotle University of Thessaloniki, GR-54124,Thessaloniki, Greece;

    Department of Chemistry, Northwestern University, Evanston, IL 60208,USA,Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208, USA;

    Department of Physics, University of Michigan, Ann Arbor, MI 48109, USA;

    Physics Department, Aristotle University of Thessaloniki, GR-54124,Thessaloniki, Greece;

    Department of Physics, University of Michigan, Ann Arbor, MI 48109, USA;

    Physics Department, Aristotle University of Thessaloniki, GR-54124,Thessaloniki, Greece;

    Department of Materials Science and Engineering, Northwestern University, Evanston, IL 60208, USA;

    Department of Chemistry, Northwestern University, Evanston, IL 60208,USA;

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