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INVESTIGATION OF PHONON SUPPRESSION BY NANOSTRUCTURING AND DOPING IN THERMOELECTRIC HALF-HEUSLER MATERIALS

机译:纳米结构化和掺杂在热电半空间 - Heusler材料中的声音抑制研究

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We live in the age when humanity finds itself on the edge of energy crisis, fossil fuels are consumed and our energy consumption rises every year. One solution would be to obtain energy from renewable sources and to minimize the losses of energy produced, e.g. reuse the waste heat. Thermoelectric materials can convert heat directly and reversibly into electricity and allow therefore to use waste thermal energy more efficiently. Their benefits include the absence of moving parts, quiet operation, reliability, durability, and the fact that they do not produce any polluting emissions, so we can use them in a wide range of applications and they are also attractive from an environmental point of view. Half-Heusler alloys belong to one of the most promising thermoelectric materials composed of relatively non-toxic and abundant elements, with highest ZT = 1.5 at 700 K for Zro.25Hfo.25Tio.5Ni1Sno.998Sbo.002 at% alloy. In our study we try to improve the thermoelectric performance of this alloy by doping it with semiconducting dispersion phase - β-FeSi_2, which should reduce the thermal conductivity of the origin alloy. Since thermal conductivity depends to large extent on the propagation of phonons we have investigated how the nanostructuring of the samples by means of ball milling and doping impact the phonon behavior. For this purpose we have conducted inelastic neutron scattering experiments using the time-of flight spectrometer NEAT at Helmholtz Zentrum Berlin. In this paper are presented results of our study demonstrating the effect of phonon suppression by nanostructuring and doping in thermoelectric half-Heusler alloys.
机译:我们生活在年龄,人类在能源危机的边缘发现自己,化石燃料消耗,我们每年的能源消耗都上升。一种解决方案是从可再生来源获得能量,并最大限度地减少所产生的能量损失。重用废物热量。热电材料可以直接转换热量,可逆地转化为电力,因此可以更有效地使用废热能。他们的好处包括没有动作部件,安静的操作,可靠性,耐用性,以及它们不会产生任何污染排放的事实,因此我们可以在广泛的应用中使用它们,并且它们也有吸引力的环境观点。半风速合金属于最有前途的热电材料之一,由相对无毒和丰富的元素组成,最高Zt = 1.5,ZrO 2.5HFO.25TiO.5NI1.002在%合金中。在我们的研究中,我们尝试通过用半导体分散相 - β-Fesi_2掺杂它来提高该合金的热电性能,这应该降低原始合金的导热率。由于导热率在很大程度上取决于声子的传播,因此我们研究了通过球磨和掺杂对声子行为影响样品的纳米结构。为此目的,我们已经使用赫尔莫霍尔斯Zentrum Berlin的飞行谱仪整洁进行了无弹性中子散射实验。本文呈现了我们的研究结果,证明了通过纳米结构化和掺杂在热电半发生合金中的声子抑制的影响。

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