Asghar Hussain, Chenxin Zhang, Changsheng Hou, Qian Wang
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引用次数: 0
Abstract
Inspired by the experimental synthesis of bulk HgO2 with the potential of exfoliation to form a penta-HgO2 sheet composed entirely of pentagonal motifs, a detailed theoretical study on the lattice thermal conductivity by using first-principles calculations combined with the unified theory of thermal transport is performed. It is found that the penta-HgO2 sheet is semiconducting with an indirect bandgap of 1.18 eV and possesses a low lattice thermal conductivity of 2.07 W m−1 K−1 (3.28 W m−1 K−1) along the x (y)-direction at 300 K. More interestingly, the variation of its thermal conductivity with temperature is non-monotonic, different from most cases. The phonon dispersion, phonon scattering, and phonon coherence is further systematically investigated to understand the underlying physics. This results suggest that the strong intrinsic anharmonicity resulting from its unique atomic configuration with the buckled structure and the heavy element of Hg leads to a high scattering rate, resulting in the ultralow particle-like thermal transport of 0.20 W m−1 K−1 (0.01 W m−1 K−1) in the x (y)-direction, while the narrow average frequency interval and strong phonon linewidth are responsible for the dominant coherent thermal transport and non-monotonic variation of the low lattice thermal conductivity of the penta-HgO2 sheet.
受实验合成的块状二氧化汞具有剥离形成完全由五边形图案组成的五边形二氧化汞片的潜力的启发,我们利用第一性原理计算结合热传输统一理论对晶格热导率进行了详细的理论研究。研究发现,五边形二氧化汞片是间接带隙为 1.18 eV 的半导体,在 300 K 时沿 x(y)方向具有 2.07 W m-1 K-1 (3.28 W m-1 K-1)的低晶格热导率。我们进一步系统地研究了声子色散、声子散射和声子相干性,以了解其基本物理原理。结果表明,由于其独特的倒扣结构原子构型和重元素汞所产生的强固有非谐波性,导致了高散射率,从而使其在超低的粒子状热传输中达到 0.20 W m-1 K-1 (0.01 W m-1 K-1),而平均频率间隔窄和声子线宽强则导致了五氧化汞薄片的主要相干热传输和低晶格热导率的非单调变化。
期刊介绍:
Advanced Theory and Simulations is an interdisciplinary, international, English-language journal that publishes high-quality scientific results focusing on the development and application of theoretical methods, modeling and simulation approaches in all natural science and medicine areas, including:
materials, chemistry, condensed matter physics
engineering, energy
life science, biology, medicine
atmospheric/environmental science, climate science
planetary science, astronomy, cosmology
method development, numerical methods, statistics