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High-performance thermoelectric nanocomposites from nanocrystal building blocks

机译:纳米晶体构件的高性能热电纳米复合材料

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摘要

The efficient conversion between thermal and electrical energy by means of durable, silent and scalable solid-state thermoelectric devices has been a long standing goal. While nanocrystalline materials have already led to substantially higher thermoelectric efficiencies, further improvements are expected to arise from precise chemical engineering of nanoscale building blocks and interfaces. Here we present a simple and versatile bottom–up strategy based on the assembly of colloidal nanocrystals to produce consolidated yet nanostructured thermoelectric materials. In the case study on the PbS–Ag system, Ag nanodomains not only contribute to block phonon propagation, but also provide electrons to the PbS host semiconductor and reduce the PbS intergrain energy barriers for charge transport. Thus, PbS–Ag nanocomposites exhibit reduced thermal conductivities and higher charge carrier concentrations and mobilities than PbS nanomaterial. Such improvements of the material transport properties provide thermoelectric figures of merit up to 1.7 at 850 K.
机译:借助耐用,静音和可扩展的固态热电器件在热能和电能之间进行有效转换一直是一个长期的目标。尽管纳米晶体材料已经导致了实质上更高的热电效率,但是人们期望纳米级构件和界面的精确化学工程能够带来进一步的改进。在这里,我们基于胶体纳米晶体的组装提出了一种简单而通用的自下而上的策略,以生产固结而纳米结构的热电材料。在PbS-Ag系统的案例研究中,Ag纳米域不仅有助于声子传播,而且还为PbS主体半导体提供电子,并减少了PbS晶间的能量传输障碍。因此,与PbS纳米材料相比,PbS-Ag纳米复合材料表现出降低的热导率和更高的载流子浓度和迁移率。材料传输性能的这种改善提供了在850 atK时高达1.7的热电性能。

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