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Establishing the Golden Range of Seebeck Coefficient for Maximizing Thermoelectric Performance

机译:建立塞贝克系数的黄金区间以最大化热电性能

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摘要

The coupling nature of thermoelectric properties determines that optimizing the Fermi level is the priority to achieve a net increase in thermoelectric performance. Conventionally, the carrier concentration is used as the reflection of the Fermi level in the band structure. However, carrier concentration strongly depends upon the material's effective mass, leading to that the optimal carrier concentration varies over a large scale for different materials. Herein, inspired by the big data survey, we develop a golden Seebeck coefficient range of 202—230 μV K~(-1) for thermoelectric semiconductors with lattice thermal conductivity of 0.4—1.5 W m~(-1) K~(-1). When the measured Seebeck coefficient reaches this range, the corresponding figure of merit is maximized. Using this approach, we exemplarily analyze the characteristics of n-type Pb_(1-x)Bi_xSe thermoelectric materials. With detailed electron microscopy and property characterizations, the high densities of dislocations and pores are found to be responsible for a low lattice thermal conductivity. Moreover, Bi substitution significantly tunes the Seebeck coefficient in a wide range. As a result, the Seebeck coefficient of ~ —230 μV K~(-1) in Pb_(0.98)Bi_(0.02)Se is close to the golden range, leading to a figure of merit beyond 1.5. This finding provides an intuitive metric to determine the optimization extent of thermoelectric performance.
机译:热电特性的耦合性质决定了优化费米能级是实现热电性能净增长的首要任务。常规地,将载流子浓度用作能带结构中费米能级的反射。然而,载流子浓度在很大程度上取决于材料的有效质量,从而导致最佳载流子浓度在不同材料下会大幅度变化。在此,受大数据调查的启发,我们为晶格导热系数为0.4-1.5 W m〜(-1)K〜(-1)的热电半导体开发了金色塞贝克系数范围202-230μVK〜(-1)。 )。当测得的塞贝克系数达到此范围时,相应的品质因数将最大化。使用这种方法,我们示例性地分析了n型Pb_(1-x)Bi_xSe热电材料的特性。通过详细的电子显微镜和特性表征,发现位错和孔的高密度是导致晶格导热率低的原因。此外,Bi置换可在很大范围内显着调节塞贝克系数。结果,Pb_(0.98)Bi_(0.02)Se中的〜-230μVK〜(-1)的塞贝克系数接近黄金范围,导致品质因数超过1.5。这一发现为确定热电性能的优化程度提供了直观的指标。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第5期|2672-2681|共10页
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  • 作者单位

    Centre for Future Materials University of Southern Queensland Springfield 4300 Australia School of Mechanical and Mining Engineering The University of Queensland Brisbane 4072 Australia;

    Centre for Future Materials University of Southern Queensland Springfield 4300 Australia;

    School of Mechanical and Mining Engineering and Centre for Microscopy and Microanalysis The University of Queensland Brisbane 4072 Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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