Zhang Jialun, Zhang Lixia, Ren Wei, Gou Wenqin, Zhang Juncheng, Geng Huiyuan
State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin 150001, China.
ACS Appl Mater Interfaces. 2021 Jun 30;13(25):29809-29819. doi: 10.1021/acsami.1c06267. Epub 2021 Jun 16.
Filling guest atoms into the nanovoids of skutterudite compounds provides effective scattering for low-frequency phonons to reduce the lattice thermal conductivity. However, it is still difficult to simultaneously realize the full-spectrum phonon scattering and band engineering in the n-type skutterudites with higher thermoelectric performance. Here, we reveal that the combination of five types of element atoms in the lattice nanovoids brings about dense dislocations, abundant precipitated nanoparticles, and electronic band convergence in the n-type skutterudites. The Seebeck coefficient shows an increase with little deterioration on the carrier mobility due to the enhanced density of states near the Fermi level, leading to a 11% enhancement in the power factor at 823 K. The lattice thermal conductivity is significantly reduced to approach the glass limit due to the full-spectrum phonon scattering. As a result, a peak ZT value of about 1.7 at 823 K and an average ZT value of about 1.2 from 323 to 823 K are obtained. High thermoelectric performance combined with the structural optimization enables the simulated maximum energy conversion efficiency of the skutterudite module to reach up to 15.0%. Our finding opens a new dimension for doping atoms to achieve simultaneous optimization of electrical and thermal properties in polynary thermoelectric materials.
将客体原子填充到方钴矿化合物的纳米孔隙中,可为低频声子提供有效的散射,从而降低晶格热导率。然而,对于具有更高热电性能的n型方钴矿,要同时实现全谱声子散射和能带工程仍然很困难。在此,我们揭示了晶格纳米孔隙中五种元素原子的组合,在n型方钴矿中产生了密集的位错、大量沉淀的纳米颗粒以及电子能带收敛。由于费米能级附近态密度的增强,塞贝克系数增加,而载流子迁移率几乎没有恶化,导致823 K时功率因子提高了11%。由于全谱声子散射,晶格热导率显著降低,接近玻璃极限。结果,在823 K时获得了约1.7的峰值ZT值,在323至823 K范围内获得了约1.2的平均ZT值。高热电性能与结构优化相结合,使方钴矿模块的模拟最大能量转换效率达到15.0%。我们的发现为掺杂原子开辟了一个新的维度,以实现多元热电材料电学和热学性能的同时优化。