Shang Peng-Peng, Dong Jinfeng, Pei Jun, Sun Fu-Hua, Pan Yu, Tang Huaichao, Zhang Bo-Ping, Zhao Li-Dong, Li Jing-Feng
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
College of Chemistry and Material Science, Shandong Agricultural University, Tai'an 271018, China.
Research (Wash D C). 2019 Nov 11;2019:9253132. doi: 10.34133/2019/9253132. eCollection 2019.
Thermoelectric materials, which directly convert heat into electricity based on the Seebeck effects, have long been investigated for use in semiconductor refrigeration or waste heat recovery. Among them, SnSe has attracted significant attention due to its promising performance in both p-type and n-type crystals; in particular, a higher out-of-plane ZT value could be achieved in n-type SnSe due to its 3D charge and 2D phonon transports. In this work, the thermoelectric transport properties of n-type polycrystalline SnSe were investigated with an emphasis on the out-of-plane transport through producing textural microstructure. The textures were fabricated using mechanical alloying and repeated spark plasma sintering (SPS), as a kind of hot pressing, aimed at producing strong anisotropic transports in n-type polycrystalline SnSe as that in crystalline SnSe. Results show that the lowest thermal conductivity of 0.36 Wm K was obtained at 783 K in perpendicular to texture direction. Interestingly, the electrical transport properties are less anisotropic and even nearly isotropic, and the power factors reach 681.3 Wm K at 783 K along both parallel and perpendicular directions. The combination of large isotropic power factor and low anisotropic thermal conductivity leads to a maximum ZT of 1.5 at 783 K. The high performance elucidates the outstanding electrical and thermal transport behaviors in n-type polycrystalline SnSe, and a higher thermoelectric performance can be expected with future optimizing texture in n-type polycrystalline SnSe.
热电材料基于塞贝克效应将热量直接转化为电能,长期以来一直被研究用于半导体制冷或废热回收。其中,SnSe因其在p型和n型晶体中都具有良好的性能而备受关注;特别是,n型SnSe由于其三维电荷和二维声子传输,能够实现更高的面外ZT值。在这项工作中,研究了n型多晶SnSe的热电输运性质,重点是通过产生织构微观结构来研究面外输运。织构是通过机械合金化和重复火花等离子烧结(SPS)制备的,SPS作为一种热压工艺,旨在使n型多晶SnSe产生与晶体SnSe中类似的强各向异性输运。结果表明,在垂直于织构方向上,783K时获得了最低热导率0.36Wm⁻¹K⁻¹。有趣的是,电输运性质的各向异性较小,甚至几乎是各向同性的,在783K时,沿平行和垂直方向的功率因子均达到681.3Wm⁻¹K⁻²。大的各向同性功率因子和低的各向异性热导率相结合,使得在783K时ZT最大值达到1.5。这种高性能阐明了n型多晶SnSe中出色的电输运和热输运行为,并且通过未来优化n型多晶SnSe的织构有望实现更高的热电性能。