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Probing the Physical Origin of Anisotropic Thermal Transport in Black Phosphorus Nanoribbons

机译:探索黑磷纳米带中各向异性热传输的物理起源

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Black phosphorus (BP) has emerged as a promising candidate for next-generation electronics and optoelectronics among the 2D family materials due to its extraordinary electrical/optical/optoelectronic properties. Interestingly, BP shows strong anisotropic transport behavior because of its puckered honeycomb structure. Previous studies have demonstrated the thermal transport anisotropy of BP and theoretically attribute this to the anisotropy in both the phonon dispersion relation and the phonon relaxation time. However, the exact origin of such strong anisotropy lacks clarity and has yet to be proven experimentally. Here, the thermal transport anisotropy of BP nanoribbons is probed by an electron beam technique. Direct evidence is provided that the origin of this anisotropy is dominated by the anisotropic phonon group velocity, verified by Young's modulus measurements along different directions. It turns out that the ratio of the thermal conductivity between zigzag (ZZ) and armchair (AC) ribbons is almost same as that of the corresponding Young modulus values. The results from first-principles calculation are consistent with this experimental observation, where the anisotropic phonon group velocity between ZZ and AC is shown. These results provide fundamental insight into the anisotropic thermal transport in low-symmetry crystals.
机译:黑磷(BP)由于其非凡的电气/光学/光电特性,已经成为2D系列材料中下一代电子和光电的有前途的候选者。有趣的是,由于BP褶皱的蜂窝状结构,因此BP具有很强的各向异性。先前的研究已经证明了BP的热输运各向异性,并且在理论上将其归因于声子色散关系和声子弛豫时间的各向异性。但是,这种强各向异性的确切来源尚不清楚,尚待实验证明。在这里,通过电子束技术探测了BP纳米带的热传输各向异性。直接证据表明,各向异性的起源是各向异性声子基团速度,这是通过沿不同方向的杨氏模量测量证实的。事实证明,之字形(ZZ)和扶手椅(AC)碳带之间的导热率之比与相应的杨氏模量值几乎相同。第一性原理计算的结果与该实验观察结果一致,其中示出了ZZ和AC之间的各向异性声子基团速度。这些结果提供了对低对称晶体中各向异性热传输的基本了解。

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