College of Physics, Chongqing University , Chongqing 401331, People's Republic of China.
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences , Chongqing 400714, People's Republic of China.
ACS Appl Mater Interfaces. 2017 Mar 29;9(12):10595-10601. doi: 10.1021/acsami.6b12796. Epub 2017 Mar 17.
High thermal conductivity of CoSbS-based limited its own prospect application in thermoelectric energy conversion. Solid solution is an effective approach to optimize the performance of thermoelectric materials with high lattice thermal conductivity because of the enhanced phonons scattering from disorder atoms. In this paper, we have synthesized and measured the thermoelectric properties of solid solution CoSbSSe (x = 0, 0.05, 0.10, 0.15, 0.20, 0.30) series samples. The collaborative optimization (enhancing the power factors and reducing the thermal conductivities) to add zT values were realized via substitution of S atoms with the isoelectronic Se atoms in the matrix. Meanwhile, the lowest room temperature lattice thermal conductivity in CoSbS-based materials is obtained (4.72 W m K) at present. Benefiting from the results of synergistic strategy, a zT of 0.35 was achieved at 923 K for sample CoSbSSe, a 59% improvement as compared with that of the pristine CoSbS. Band calculation demonstrated that CoSbSSe present a similar band dispersion with CoSbS. The mechanism of point defect scattering for reducing the lattice thermal conductivity at room temperature, was also analyzed by the Callaway model. The contributions to decrease the room temperature lattice thermal conductivity from the mass and the strain fluctuation in the crystal are comparable. These results can also be extended to other high-efficiency thermoelectric materials with stiff bond and smaller Gruneisen parameters.
高导热系数的 CoSbS 限制了其在热电能量转换中的应用前景。固溶体是优化具有高热导晶格的热电材料性能的有效方法,因为无序原子增强了声子散射。在本文中,我们合成并测量了固溶体 CoSbSSe(x = 0、0.05、0.10、0.15、0.20、0.30)系列样品的热电性能。通过用等电子 Se 原子替代基质中的 S 原子,可以协同优化(提高功率因数和降低热导率)来实现 zT 值的提高。同时,目前在 CoSbS 基材料中获得了最低的室温晶格热导率(4.72 W m K)。得益于协同策略的结果,CoSbSSe 样品在 923 K 时的 zT 值达到 0.35,比原始 CoSbS 提高了 59%。能带计算表明,CoSbSSe 具有与 CoSbS 相似的能带色散。还通过 Callaway 模型分析了室温下点缺陷散射降低晶格热导率的机制。在晶体中,质量和应变波动对降低室温晶格热导率的贡献相当。这些结果也可以扩展到具有硬键和较小 Gruneisen 参数的其他高效热电材料。