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Ballistic thermoelectric properties of nitrogenated holey graphene nanostructures

机译:氮化多孔石墨烯纳米结构的弹道热电性质

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摘要

In this study, we theoretically investigate the ballistic thermoelectric performance of a new two-dimensional material, nitrogenated holey graphene (NHG), using nonequilibrium Green's function method. The calculations show that compared to graphene, such novel single atomic layer structure exhibits better thermoelectric performance. At room temperature, the stable hole (electron) thermoelectric figure of merit (ZT) could approach 0.75 (0.2) and 0.6 (0.2) for zigzag-edged (Z-NHGNRs) and armchair-edged NHGNRs (A-NHGNRs), respectively. To achieve better thermoelectric performance, the effect of geometric engineering (chevron-type nanoribbons and rhomboid quantum dot) on the electronic and phononic transport properties of Z-NHGNRs is further discussed. The results indicate that structure modulation is indeed a viable approach to enhance the thermoelectric properties (the figure of merit could exceed 1.5 and 1.3 for the chevron-type and rhomboid quantum dot system, respectively). On analyzing the transport properties, such improvement on the figure of merit is mainly attributed to the increased Seebeck coefficient and reduced thermal conductance (including both electronic and phononic contributions). Our findings presented in this paper qualify NHG as a promising thermoelectric material and provide theoretical guidance for fabricating the outstanding thermoelectric devices.
机译:在本研究中,我们使用非平衡格林函数方法从理论上研究了一种新型二维材料氮化多孔石墨烯(NHG)的弹道热电性能。计算表明,与石墨烯相比,这种新颖的单原子层结构具有更好的热电性能。在室温下,曲折边缘(Z-NHGNRs)和扶手椅边缘NHGNR(A-NHGNRs)的稳定孔(电子)热电品质因数(ZT)分别接近0.75(0.2)和0.6(0.2)。为了获得更好的热电性能,进一步讨论了几何工程(V形纳米带和菱形量子点)对Z-NHGNRs的电子和声子输运性质的影响。结果表明,结构调制确实是增强热电性能的可行方法(人字形和菱形量子点系统的品质因数分别超过1.5和1.3)。在分析传输特性时,对品质因数的这种改善主要归因于塞贝克系数的增加和热导率的降低(包括电子和声子贡献)。我们在本文中提出的发现使NHG成为有前途的热电材料,并为制造出色的热电设备提供了理论指导。

著录项

  • 来源
    《Journal of Applied Physics 》 |2017年第17期| 174302.1-174302.8| 共8页
  • 作者单位

    Hunan Key Laboratory for Micro-Nano Energy Materials and Device, Department of Physics, Xiangtan University, Xiangtan, Hunan, China;

    Hunan Key Laboratory for Micro-Nano Energy Materials and Device, Department of Physics, Xiangtan University, Xiangtan, Hunan, China;

    Hunan Key Laboratory for Micro-Nano Energy Materials and Device, Department of Physics, Xiangtan University, Xiangtan, Hunan, China;

    Hunan Key Laboratory for Micro-Nano Energy Materials and Device, Department of Physics, Xiangtan University, Xiangtan, Hunan, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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