论文标题
温度诱导的带收敛,间隔散射和p型PBTE的热电传输
Temperature induced band convergence, intervalley scattering and thermoelectric transport in p-type PbTe
论文作者
论文摘要
在材料中实现高谷退化(即“带收敛”)通常会导致热电学性能大大增强。但是,目前尚不清楚为什么这种设计有效的热电材料如此成功的策略是如此成功,因为Intertley散射可能会严重降低状态密度的好处。使用第一原理计算,我们在$ p $ type pbte中调查了这些效果,其中温度会导致$ l $和$σ$ valleys的对齐为$ \ sim $ 〜620〜k。我们明确表明,在带收敛温度附近的热电功率因数和绩效峰值。优点最大值大于单个$ l $和$σ$ valleys的数字。令人惊讶的是,尽管它将功率因数降低了几乎2倍,但间隔散射并不会显着影响频带收敛温度和最佳掺杂条件附近的功绩数字。我们的结果表明,如果Interveley散射与状态的散射相比,那么频率的散射程度大大降低了,即使晶状体的散射程度较低,因此频段收敛将显着提高功绩的数字,即使是在晶格中的散射,即
Achieving high valley degeneracy (i.e. "band convergence") in a material usually results in considerably enhanced thermoelectric properties. However, it is still unclear why this strategy of designing efficient thermoelectric materials is so successful, since the benefit of increased density of states may be severely degraded by intervalley scattering. Using first-principles calculations, we investigate these effects in $p$-type PbTe, where temperature induces alignment of the $L$ and $Σ$ valleys at $\sim$~620~K. We explicitly show that the thermoelectric power factor and figure of merit peak near the band convergence temperature. The figure of merit maximum is larger than those of the individual $L$ and $Σ$ valleys. Surprisingly, intervalley scattering does not considerably affect the figure of merit near the band convergence temperature and optimal doping conditions, although it reduces the power factor by almost a factor of 2. Our results suggest that band convergence will significantly increase the figure of merit if intervalley scattering is roughly proportional to the density of states and the lattice thermal conductivity is considerably lower than the electronic thermal conductivity, even if intervalley scattering is strong.