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A distinct correlation between the vibrational and thermal transport properties of group VA monolayer crystals

机译:一个明显的和振动之间的关系组的热输运性质单层晶体

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The investigation of thermal transport properties of novel two-dimensional materials is crucially important in order to assess their potential to be used in future technological applications, such as thermoelectric power generation. In this respect, the lattice thermal transport properties of the monolayer structures of group VA elements (P, As, Sb, Bi, PAs, PSb, PBi, AsSb, AsBi, SbBi, P3As1, P3Sb1, P1As3, and As3Sb1) with a black phosphorus like puckered structure were systematically investigated by first-principles calculations and an iterative solution of the phonon Boltzmann transport equation. Phosphorene was found to have the highest lattice thermal conductivity, , due to its low average atomic mass and strong interatomic bonding character. As a matter of course, anisotropic was obtained for all the considered materials, owing to anisotropy in frequency values and phonon group velocities calculated for these structures. However, the determined linear correlation between the anisotropy in the values of P, As, and Sb is significant. The results corresponding to the studied compound structures clearly point out that thermal (electronic) conductivity of pristine monolayers might be suppressed (improved) by alloying them with the same group elements. For instance, the room temperature of PBi along the armchair direction was predicted to be as low as 1.5 W m(-1) K-1, whereas that of P was predicted to be 21 W m(-1) K-1. In spite of the apparent differences in structural and vibrational properties, we peculiarly revealed an intriguing correlation between the values of all the considered materials as = c(1) + c(2)/m(2), in particular along the zigzag direction. Furthermore, our calculations on compound structures clearly showed that the thermoelectric potential of these materials can be improved by suppressing their thermal properties. The presence of ultra-low values and high electrical conductivity (especially along the armchair direction) makes this class of monolayers promising candidates for thermoelectric applications.
机译:热传输特性的调查新颖的二维材料是至关重要的重要的,以评估他们的潜力用于未来的技术应用,如热电发电。尊重、晶格热传输特性弗吉尼亚州的单层结构组的元素(P, As, Sb, Bi, PAs, PSb PBi AsSb AsBi、SbBiP3As1, P3Sb1 P1As3和As3Sb1),黑色的磷皱等结构系统地研究了采用基于计算和迭代的解决方案声子玻耳兹曼输运方程。发现晶格热最高电导率,由于其较低的平均原子质量和强大的原子间成键字符。当然,获得了各向异性所有的材料,由于各向异性在频率值和声子群速度这些结构的计算。之间的线性相关决定各向异性的P值,,,某人有很重要的意义。研究了复合结构清楚地指出热(电子)的电导率原始层可能抑制(改进)合金同一组元素。沿扶手椅PBi方向预测低至1.5 W m (1) k - 1,而P预计是21 W m (1) k - 1。在结构和明显的差异振动特性,我们特别了有趣的关联的值考虑材料的c = c (1) + (2) / m (2),特别是沿着曲折的方向。此外,我们的计算清楚地表明,热电结构这些材料可以改善的潜力压制他们的热性能。超低值和高电的存在电导率(特别是沿扶手椅方向)使这类单层膜有前途的候选人为热电应用程序。

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