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Design and Synthesis of One and Two Dimensional Thermoelectric Nanomaterials Composed of Bismuth, Antimony, and Tellurium.

机译:一种与二维热电纳米材料组成的设计与合成铋,锑和碲。

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With the advent of nanotechnology, the field of thermoelectric (TE) materials has been re-invigorated with many recent advances towards materials with high thermoelectric efficiency (dimensionless figure of merit, ZT). The realization of such materials opens up new avenues to the creation of devices that can be used in freon-less refrigeration, micro-electronic cooling, or for harnessing lost heat energy from sources such as car engines. In our own research work, we have successfully synthesized thermoelectric nanoscale materials composed of bismuth, antimony, and tellurium. By using a wet chemical thermal reduction procedure, we were able to create bismuth, antimony, and tellurium composite particles. What's more, by employing different molecular encapsulating agents in the synmesis, we were able to control the resulting shapes of the nanomaterials, resulting in both one and two dimensional bismuth, antimony, and tellurium nanoparticles. The one dimensional nanowires exhibit a micron scale length and ~20-50nm diameter, while the two dimensional nanodiscs exhibit a diameter of ~100nrn and a thickness of ~25nm. The unique morphology of these materials make them ideal candidates for processing into functional thermoelectric devices. This paper focuses on our recent study of the synthesis of bismuth, antimony, and tellurium composite nanomaterials of a nanowire and nanodisc morphology, which was directed by the capping agents used in the synthesis. Part of our preliminary study includes analysis of the thermoelectric efficiency of the materials. The resulting nanomaterials are characterized using techniques such as HR-TEM, XPS, XRD, and SEM the results of which provide insight into the design and synthesis of nanoscale materials with enhanced thermoelectric properties.
机译:随着纳米技术的出现,热电(TE)材料的领域已经重新调整了具有高热电效率的材料的许多进步(无量纲,ZT)。这种材料的实现开辟了创建可用于氟利昂制冷,微电子冷却的设备的新途径,或者用于利用汽车发动机等源的损失的热能。在我们自己的研究工作中,我们已经成功地合成了由铋,锑和碲组成的热电纳米级材料。通过使用湿化学热还原程序,我们能够产生铋,锑和碲复合颗粒。更重要的是,通过在综合中使用不同的分子包封剂,我们能够控制纳米材料的所得形状,导致一个和二维铋,锑和碲纳米粒子。一维纳米线具有微米刻度长度和直径〜20-50nm,而二维纳米纳米型直径呈〜100nrn的直径和厚度为约25nm。这些材料的独特形态使其成为处理功能热电装置的理想候选者。本文侧重于我们最近对纳米线和纳米型形态的合成铋,锑和碲复合纳米材料的研究,其被合成中使用的封端剂引导。我们的一部分初步研究包括分析材料的热电效率。所得的纳米材料的特征在于使用诸如HR-TEM,XPS,XRD和SEM的技术的技术,其结果提供了对具有增强的热电性能的纳米级材料的设计和合成的洞察力。

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