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二维氧化磷烯的低晶格热导率

Low Lattice Thermal Conductivity of a Two-Dimensional Phosphorene Oxide.

作者信息

Lee Seungjun, Kang Seoung-Hun, Kwon Young-Kyun

机构信息

Department of Physics and Research Institute for Basic Sciences, Kyung Hee University, Seoul, 02447, Korea.

Korea Institute for Advanced Study (KIAS), Seoul, 02455, Korea.

出版信息

Sci Rep. 2019 Mar 26;9(1):5149. doi: 10.1038/s41598-019-41696-y.

Abstract

A fundamental understanding of the phonon transport mechanism is important for optimizing the efficiency of thermoelectric devices. In this study, we investigate the thermal transport properties of the oxidized form of phosphorene called phosphorene oxide (PO) by solving phonon Boltzmann transport equation based on first-principles density functional theory. We reveal that PO exhibits a much lower thermal conductivity (2.42-7.08 W/mK at 300 K) than its pristine counterpart as well as other two-dimensional materials. To comprehend the physical origin of such low thermal conductivity, we scrutinize the contribution of each phonon branch to the thermal conductivity by evaluating various mode-dependent quantities including Grüneisen parameters, anharmonic three-phonon scattering rate, and phase space of three-phonon scattering processes. Our results show that its flexible puckered structure of PO leads to smaller sound velocities; its broken-mirror symmetry allows more ZA phonon scattering; and the relatively-free vibration of dangling oxygen atoms in PO gives rise to additional scattering resulting in further reduction in the phonon lifetime. These results can be verified by the fact that PO has larger phase space for three-phonon processes than phosphorene. Furthermore we show that the thermal conductivity of PO can be optimized by controlling its size or its phonon mean free path, indicating that PO can be a promising candidate for low-dimensional thermoelectric devices.

摘要

对声子输运机制的基本理解对于优化热电器件的效率至关重要。在本研究中,我们基于第一性原理密度泛函理论,通过求解声子玻尔兹曼输运方程,研究了被称为氧化磷烯(PO)的磷烯氧化形式的热输运性质。我们发现,与原始磷烯以及其他二维材料相比,PO的热导率要低得多(300 K时为2.42 - 7.08 W/mK)。为了理解这种低热导率的物理根源,我们通过评估包括格林艾森参数、非谐三声子散射率和三声子散射过程的相空间等各种与模式相关的量,仔细研究了每个声子分支对热导率的贡献。我们的结果表明,PO的柔性褶皱结构导致声速较小;其镜面对称性的破坏允许更多的ZA声子散射;并且PO中悬空氧原子的相对自由振动会引起额外的散射,从而导致声子寿命进一步缩短。这些结果可以通过PO比磷烯具有更大的三声子过程相空间这一事实得到验证。此外,我们表明可以通过控制PO的尺寸或其声子平均自由程来优化其热导率,这表明PO有望成为低维热电器件的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ea3/6435745/558d5f43ab3c/41598_2019_41696_Fig1_HTML.jpg

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