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SnTe 中的共掺杂:通过共振能级和能带收敛的协同作用提高热电性能。

Codoping in SnTe: Enhancement of Thermoelectric Performance through Synergy of Resonance Levels and Band Convergence.

机构信息

§Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, United States.

∥Materials Science Division, Argonne National Laboratory, Argonne, Illinois 60439, United States.

出版信息

J Am Chem Soc. 2015 Apr 22;137(15):5100-12. doi: 10.1021/jacs.5b00837. Epub 2015 Apr 9.

Abstract

We report a significant enhancement of the thermoelectric performance of p-type SnTe over a broad temperature plateau with a peak ZT value of ∼1.4 at 923 K through In/Cd codoping and a CdS nanostructuring approach. Indium and cadmium play different but complementary roles in modifying the valence band structure of SnTe. Specifically, In-doping introduces resonant levels inside the valence bands, leading to a considerably improved Seebeck coefficient at low temperature. Cd-doping, however, increases the Seebeck coefficient of SnTe remarkably in the mid- to high-temperature region via a convergence of the light and heavy hole bands and an enlargement of the band gap. Combining the two dopants in SnTe yields enhanced Seebeck coefficient and power factor over a wide temperature range due to the synergy of resonance levels and valence band convergence, as demonstrated by the Pisarenko plot and supported by first-principles band structure calculations. Moreover, these codoped samples can be hierarchically structured on all scales (atomic point defects by doping, nanoscale precipitations by CdS nanostructuring, and mesoscale grains by SPS treatment) to achieve highly effective phonon scattering leading to strongly reduced thermal conductivities. In addition to the high maximum ZT the resultant large average ZT of ∼0.8 between 300 and 923 K makes SnTe an attractive p-type material for high-temperature thermoelectric power generation.

摘要

我们通过 In/Cd 共掺杂和 CdS 纳米结构化方法,报道了 p 型 SnTe 的热电性能在一个宽温度平台上得到显著增强,在 923 K 时峰值 ZT 值约为 1.4。铟和镉在修饰 SnTe 的价带结构方面发挥着不同但互补的作用。具体而言,In 掺杂在价带中引入了共振能级,导致低温下 Seebeck 系数显著提高。然而,Cd 掺杂通过轻孔和重孔带的收敛以及带隙的增大,在中高温区域显著提高了 SnTe 的 Seebeck 系数。由于共振能级和价带收敛的协同作用,在 SnTe 中结合这两种掺杂剂可在宽温度范围内获得增强的 Seebeck 系数和功率因子,这可以通过 Pisarenko 图证明,并得到第一性原理能带结构计算的支持。此外,这些共掺杂的样品可以在所有尺度上进行分级结构(掺杂的原子点缺陷、CdS 纳米结构化的纳米级沉淀和 SPS 处理的介观晶粒),以实现高效的声子散射,从而大大降低热导率。除了高的最大 ZT 值外,在 300-923 K 之间获得的约 0.8 的大平均 ZT 值使 SnTe 成为高温热电发电的有吸引力的 p 型材料。

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