Department of Physics, Royal Holloway, University of London, Egham TW20 0EX, UK.
Nat Mater. 2013 Nov;12(11):1028-32. doi: 10.1038/nmat3739. Epub 2013 Aug 25.
The need for both high electrical conductivity and low thermal conductivity creates a design conflict for thermoelectric systems, leading to the consideration of materials with complicated crystal structures. Rattling of ions in cages results in low thermal conductivity, but understanding the mechanism through studies of the phonon dispersion using momentum-resolved spectroscopy is made difficult by the complexity of the unit cells. We have performed inelastic X-ray and neutron scattering experiments that are in remarkable agreement with our first-principles density-functional calculations of the phonon dispersion for thermoelectric Na(0.8)CoO2, which has a large-period superstructure. We have directly observed an Einstein-like rattling mode at low energy, involving large anharmonic displacements of the sodium ions inside multi-vacancy clusters. These rattling modes suppress the thermal conductivity by a factor of six compared with vacancy-free NaCoO2. Our results will guide the design of the next generation of materials for applications in solid-state refrigerators and power recovery.
对于热电系统来说,高导电性和低导热性的需求存在设计冲突,这促使人们考虑采用具有复杂晶体结构的材料。离子在笼中的振动会导致导热系数降低,但由于单元胞的复杂性,通过动量分辨光谱研究声子色散来理解其机制变得很困难。我们进行了非弹性 X 射线和中子散射实验,这些实验与我们对具有大周期超结构的热电 Na(0.8)CoO2 声子色散的第一性原理密度泛函计算非常吻合。我们直接观察到了一种低能量的爱因斯坦型振动模式,其中钠离子在多空位簇内发生大的非谐位移。与无空位 NaCoO2 相比,这些振动模式将热导率降低了六倍。我们的研究结果将为下一代用于固态冰箱和能量回收的材料设计提供指导。