论文标题

多孔多晶PBTE的导热率

Thermal conductivity of porous polycrystalline PbTe

论文作者

Troncoso, Javier F., Chudzinski, Piotr, Todorov, Tchavdar N., Aguado-Puente, Pablo, Grüning, Myrta, Kohanoff, Jorge J.

论文摘要

PBTE是中等温度下的领先热电材料,这在很大程度上是由于其低晶格导热率。但是,它的效率太低,无法与其他形式的发电。通过设计能够在宽范围的长度尺度上散射声子以降低晶格导热率的纳米结构,可以有效提高该效率。对于小的空位浓度和谷物尺寸,晶界的存在可以将导热率降低至$ \ sim 0.5 $ wm $^{ - 1} $ k $^{ - 1} $。然而,在有限温度下的谷物退火,平衡和亚稳态晶粒尺寸分布决定了导热率降低的程度。在目前的工作中,我们提出了一个通过分子动力学模拟告知的相位模型,以研究PBTE中的退火过程以及如何受到晶界和空隙的存在。我们发现,在低温下,在多孔材料中,PBTE的热导率最多可降低35 \%。我们观察到,空隙的有限密度的相变控制了齐纳钉阻止晶粒生长的动力学。

PbTe is a leading thermoelectric material at intermediate temperatures, largely thanks to its low lattice thermal conductivity. However, its efficiency is too low to compete with other forms of power generation. This efficiency can be effectively enhanced by designing nanostructures capable of scattering phonons over a wide range of length scales to reduce the lattice thermal conductivity. The presence of grain boundaries can reduce the thermal conductivity to $\sim 0.5$ Wm$^{-1}$K$^{-1}$ for small vacancy concentrations and grain sizes. However, grains anneal at finite temperature, and equilibrium and metastable grain size distributions determine the extent of the reduction in thermal conductivity. In the present work, we propose a phase-field model informed by molecular dynamics simulations to study the annealing process in PbTe and how it is affected by the presence of grain boundaries and voids. We find that the thermal conductivity of PbTe is reduced by up to 35\% in the porous material at low temperatures. We observe that a phase transition at a finite density of voids governs the kinetics of impeding grain growth by Zener pinning.

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