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掺钠 SnS 的热电性能。

Thermoelectric Properties of SnS with Na-Doping.

机构信息

Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Tongji University , 4800 Caoan Road, Shanghai 201804, China.

出版信息

ACS Appl Mater Interfaces. 2017 Oct 4;9(39):34033-34041. doi: 10.1021/acsami.7b08770. Epub 2017 Sep 19.

Abstract

Tin sulfide (SnS), a low-cost compound from the IV-VI semiconductors, has attracted particular attention due to its great potential for large-scale thermoelectric applications. However, pristine SnS shows a low carrier concentration, which leads to a low thermoelectric performance. In this work, sodium is utilized to substitute Sn to increase the hole concentration and consequently improve the thermoelectric power factor. The resultant Hall carrier concentration up to ∼10 cm is the highest concentration reported so far for this compound. This further leads to the highest thermoelectric figure of merit, zT of 0.65, reported so far in polycrystalline SnS. The temperature-dependent Hall mobility shows a transition of carrier-scattering source from a grain boundary potential below 400 K to acoustic phonons at higher temperatures. The electronic transport properties can be well understood by a single parabolic band (SPB) model, enabling a quantitative guidance for maximizing the thermoelectric power factor. Using the experimental lattice thermal conductivity, a maximal zT of 0.8 at 850 K is expected when the carrier concentration is further increased to ∼1 × 10 cm, according to the SPB model. This work not only demonstrates SnS as a promising low-cost thermoelectric material but also details the material parameters that fundamentally determine the thermoelectric properties.

摘要

硫化锡 (SnS) 是一种来自 IV-VI 族的低成本化合物,由于其在大规模热电应用方面的巨大潜力而受到特别关注。然而,原始的 SnS 载流子浓度较低,导致其热电性能较低。在这项工作中,利用钠取代 Sn 来增加空穴浓度,从而提高热电功率因子。由此产生的 Hall 载流子浓度高达 ∼10 cm,是迄今为止报道的这种化合物的最高浓度。这进一步导致了多晶 SnS 迄今为止报道的最高热电优值 zT 为 0.65。霍尔迁移率随温度的变化表明,载流子散射源从 400 K 以下的晶界势过渡到较高温度下的声子。电子输运性质可以用单抛物能带 (SPB) 模型很好地理解,这为最大化热电功率因子提供了定量指导。根据 SPB 模型,使用实验晶格热导率,当载流子浓度进一步增加到 ∼1×10 cm 时,预计在 850 K 时可获得最大 zT 为 0.8。这项工作不仅证明了 SnS 是一种很有前途的低成本热电材料,而且详细说明了从根本上决定热电性能的材料参数。

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