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(1 - x)(GeTe)x(Bi2Se0.2Te2.8)的热电效率及其在高性能热电发电机中的应用

Thermoelectric efficiency of (1 - x)(GeTe) x(Bi2Se0.2Te2.8) and implementation into highly performing thermoelectric power generators.

作者信息

Koenig J, Winkler M, Dankwort T, Hansen A-L, Pernau H-F, Duppel V, Jaegle M, Bartholomé K, Kienle L, Bensch W

机构信息

Fraunhofer Institute for Physical Measurement Techniques IPM, Thermoelectric Systems, Heidenhofstraße 8, 79110 Freiburg, Germany.

出版信息

Dalton Trans. 2015 Feb 14;44(6):2835-43. doi: 10.1039/c4dt03425b.

Abstract

Here we report for the first time on a complete simulation assisted "material to module" development of a high performance thermoelectric generator (TEG) based on the combination of a phase change material and established thermoelectrics yielding the compositions (1 - x)(GeTe) x(Bi(2)Se(0.2)Te(2.8)). For the generator design our approach for benchmarking thermoelectric materials is demonstrated which is not restricted to the determination of the intrinsically imprecise ZT value but includes the implementation of the material into a TEG. This approach is enabling a much more reliable benchmarking of thermoelectric materials for TEG application. Furthermore we analyzed the microstructure and performance close to in-operandi conditions for two different compositions in order to demonstrate the sensitivity of the material against processing and thermal cycling. For x = 0.038 the microstructure of the as-prepared material remains unchanged, consequently, excellent and stable thermoelectric performance as prerequisites for TEG production was obtained. For x = 0.063 we observed strain phenomena for the pristine state which are released by the formation of planar defects after thermal cycling. Consequently the thermoelectric performance degrades significantly. These findings highlight a complication for deriving the correlation of microstructure and properties of thermoelectric materials in general.

摘要

在此,我们首次报告了一种基于相变材料与成熟热电材料相结合的高性能热电发电机(TEG)的完整模拟辅助“从材料到模块”的开发过程,该热电发电机的成分是(1 - x)(GeTe) x(Bi(2)Se(0.2)Te(2.8))。对于发电机设计,我们展示了用于对热电材料进行基准测试的方法,该方法不仅限于确定本质上不精确的ZT值,还包括将材料应用于TEG中。这种方法能够对用于TEG应用的热电材料进行更可靠的基准测试。此外,我们分析了两种不同成分在接近实际运行条件下的微观结构和性能,以证明材料对加工和热循环的敏感性。对于x = 0.038,制备态材料的微观结构保持不变,因此,获得了作为TEG生产前提条件的优异且稳定的热电性能。对于x = 0.063,我们在原始状态下观察到应变现象,热循环后通过平面缺陷的形成这些应变得以释放。因此,热电性能显著下降。这些发现突出了一般情况下推导热电材料微观结构与性能之间相关性的复杂性。

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