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Synthesis and Characterization of Thermoelectric Nanomaterials

机译:热电纳米材料的合成与表征

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摘要

As existing energy sources have been depleting at a fast pace, thermoelectric (TE) materials have received much attention in recent years because of their role in clean energy generation and conversion. Thermoelectric materials hold promise in terrestrial applications such as waste heat recovery. Bismuth selenide (Bi2Se3), lead telluride (PbTe), skutterudites CoSb3, and Bi-Sb alloys are among the widely investigated thermoelectric materials.Synthesis of above mentioned thermoelectric materials in nanostructured form and their characterization were investigated. Highly crystalline Bi2Se3, undoped and indium (In) doped PbTe, unfilled and ytterbium (Yb) filled CoSb3 nanomaterials were synthesized using hydrothermal/solvothermal technique and Ca-doped Bi-Sb alloy was synthesized using ball milling method. The mechanism of indium doping to the PbTe matrix was investigated using X-ray diffraction, laser-induced breakdown spectroscopy (LIBS) and a first principle calculation. It was found that indium doping, at a level below 2%, is substitution on Pb site. The effects of the amount of sodium borohydride (NaBH4) as the reducing agent and the annealing treatment on the phase transition of CoSb3 were investigated. It was found that a sufficient amount of NaBH4 along with the specific annealing condition was needed for the formation of pure phase CoSb3.Thermoelectric properties of Bi2Se3 and Ca-doped Bi85Sb15 were also investigated. A lower thermal conductivity and a higher Seebeck coefficient were achieved for a Bi2Se3 sample prepared in dimethyl formamide (DMF) at 200ºC for 24 h as compared to bulk Bi2Se3. The decrease in thermal conductivity can be attributed to the increased phonon scattering at the interfaces of the nanostructures and at the grain boundaries in the bulk nanocomposite. The increase in the Seebeck coefficient of Bi2Se3 nanostructures is likely the result of the quantum confinement of the carriers in nanostructures. The effect of calcium doping on Bi85Sb15 nanostructures were investigated. It was found that 2% calcium doped Bi-Sb alloy showed the best TE efficiency due to the enhanced power factor and reduced thermal conductivity.
机译:随着现有能源的快速消耗,近年来,由于热电(TE)材料在清洁能源的产生和转化中的作用,因此备受关注。热电材料在诸如废热回收等地面应用中具有广阔的前景。硒化铋(Bi2Se3),碲化铅(PbTe),方钴矿CoSb3和Bi-Sb合金是被广泛研究的热电材料。研究了上述热电材料的纳米结构及其表征。利用水热/溶剂热技术合成了高结晶度的Bi2Se3,未掺杂和铟(In)掺杂的PbTe,未填充和and(Yb)填充的CoSb3纳米材料,并采用球磨法合成了Ca掺杂的Bi-Sb合金。使用X射线衍射,激光诱导击穿光谱(LIBS)和第一原理计算,研究了铟掺杂到PbTe基体中的机理。发现铟掺杂水平低于2%,是Pb位上的取代。研究了硼氢化钠(NaBH4)的用量和退火处理对CoSb3相变的影响。发现形成纯相CoSb3需要足够的NaBH4和特定的退火条件。还研究了Bi2Se3和Ca掺杂的Bi85Sb15的热电性能。与本体Bi2Se3相比,在二甲基甲酰胺(DMF)中于200ºC制备24h的Bi2Se3样品具有较低的热导率和较高的塞贝克系数。导热率的下降可归因于在纳米结构的界面处以及在本体纳米复合材料中的晶界处声子散射的增加。 Bi2Se3纳米结构的塞贝克系数的增加很可能是纳米结构中载流子的量子限制的结果。研究了钙掺杂对Bi85Sb15纳米结构的影响。已经发现,由于功率因数增加和导热系数降低,掺杂2%钙的Bi-Sb合金表现出最佳的TE效率。

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    Kadel Kamal;

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