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Thermoelectric energy conversion using nanostructured materials

机译:使用纳米结构材料进行热电能量转换

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摘要

High performance thermoelectric materials in a wide range of temperatures are essential to broaden the application spectrum of thermoelectric devices. This paper presents experiments on the power and efficiency characteristics of lowand mid-temperature thermoelectric materials. We show that as long as an appreciable temperature difference can be created over a short thermoelectric leg, good power output can be achieved. For a mid-temperature n-type doped skutterudite material an efficiency of over 11% at a temperature difference of 600 °C could be achieved. Besides the improvement of thermoelectric materials, device optimization is a crucial factor for efficient heat-to-electric power conversion and one of the key challenges is how to create a large temperature across a thermoelectric generator especially in the case of a dilute incident heat flux. For the solar application of thermoelectrics we investigated the concept of large thermal heat flux concentration to optimize the operating temperature for highest solar thermoelectric generator efficiency. A solar-to-electric power conversion efficiency of ~5% could be demonstrated. Solar thermoelectric generators with a large thermal concentration which minimizes the amount of thermoelectric nanostrucutured bulk material shows great potential to enable cost-effective electrical power generation from the sun.
机译:高性能热电材料在各种温度范围内是扩大热电装置的应用光谱必要的。本文介绍了Lowand中温热电材料的功率和效率特性的实验。我们表明,只要可以在短的热电腿上产生明显的温差,可以实现良好的功率输出。对于中间温度的N型掺杂Skutterudite材料,可以实现600℃的温度差的效率超过11%。除了改进热电材料外,器件优化是有效的热电电力转换的关键因素,以及一个关键挑战之一是如何在稀释入射热通量的情况下如何在热电发电机上产生大的温度。对于热电的太阳能应用,我们研究了大型热量通量集中的概念,以优化最高太阳能热电发电机效率的工作温度。可以证明〜5%的太阳能转换效率。具有大的热浓度的太阳能热电发电机,可最大限度地减少热电纳米型散装材料的量,显示出极大的潜力,使得能够从太阳中产生具有成本效益的电力。

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