College of Physics Science and Technology, Yangzhou University, Yangzhou, Jiangsu 225009, China.
State Key Laboratory of Low-Dimensional Quantum Physics, Department of Physics, Tsinghua University, Beijing 100084, China.
J Chem Phys. 2023 Jul 7;159(1). doi: 10.1063/5.0148968.
Thermal conductivity and power factor are key factors in evaluating heat transfer performance and designing thermoelectric conversion devices. To search for materials with ultralow thermal conductivity and a high power factor, we proposed a set of universal statistical interaction descriptors (SIDs) and developed accurate machine learning models for the prediction of thermoelectric properties. For lattice thermal conductivity prediction, the SID-based model achieved the state-of-the-art results with an average absolute error of 1.76 W m-1 K-1. The well-performing models predicted that hypervalent triiodides XI3 (X = Rb, Cs) have ultralow thermal conductivities and high power factors. Combining first-principles calculations, the self-consistent phonon theory, and the Boltzmann transport equation, we obtained the anharmonic lattice thermal conductivities of 0.10 and 0.13 W m-1 K-1 for CsI3 and RbI3 in the c-axis direction at 300 K, respectively. Further studies show that the ultralow thermal conductivity of XI3 arises from the competition of vibrations between alkali metal atoms and halogen atoms. In addition, at 700 K, the thermoelectric figure of merit ZT values of CsI3 and RbI3 are 4.10 and 1.52, respectively, at the optimal hole doping level, which indicates hypervalent triiodides are potential high performance thermoelectric materials.
热导率和功率因子是评估热传递性能和设计热电转换器件的关键因素。为了寻找具有超低热导率和高功率因子的材料,我们提出了一套通用的统计相互作用描述符(SID),并开发了准确的机器学习模型来预测热电性能。对于晶格热导率预测,基于 SID 的模型取得了最先进的结果,平均绝对误差为 1.76 W m-1 K-1。表现良好的模型预测,高次卤化物 XI3(X = Rb,Cs)具有超低的热导率和高的功率因子。结合第一性原理计算、自洽声子理论和玻尔兹曼输运方程,我们在 300 K 时得到了 CsI3 和 RbI3 在 c 轴方向上的非谐晶格热导率分别为 0.10 和 0.13 W m-1 K-1。进一步的研究表明,XI3 的超低热导率源于碱金属原子和卤素原子之间振动的竞争。此外,在 700 K 时,在最佳空穴掺杂水平下,CsI3 和 RbI3 的热电优值 ZT 值分别为 4.10 和 1.52,这表明高次卤化物是有潜力的高性能热电材料。