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首页> 外文期刊>Physical Review. B, Condensed Matter >New group-V elemental bilayers: A tunable structure model with four-, six-, and eight-atom rings
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New group-V elemental bilayers: A tunable structure model with four-, six-, and eight-atom rings

机译:新的G组元素双层:具有四个,六个和八个原子环的可调结构模型

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Two-dimensional group-V elemental materials have attracted widespread attention due to their nonzero band gap while displaying high electron mobility. Using first-principles calculations, we propose a series of new elemental bilayers with group-V elements (Bi, Sb, As). Our study reveals the dynamical stability of four-, six-, and eight-atom ring structures, demonstrating their possible coexistence in such bilayer systems. The proposed structures for Sb and As are large-gap semiconductors that are potentially interesting for applications in future nanodevices. The Bi structures have nontrivial topological properties with a direct nontrivial band gap. The nontrivial gap is shown to arise from a band inversion at the Brillouin zone center due to the strong intrinsic spin-orbit coupling in Bi atoms. Moreover, we demonstrate the possibility of tuning the properties of these materials by enhancing the ratio of six-atom rings to four- and eight-atom rings, which results in wider nontrivial band gaps and lower formation energies.
机译:由于它们的非氮带隙,在显示高电子迁移率的同时,二维组-V元素材料引起了广泛的关注。使用第一原理计算,我们提出了一系列具有Group-V元素的新元素双层(BI,SB,AS)。我们的研究揭示了四个,六个和八个原子环结构的动态稳定性,在这种双层系统中展示了它们可能的共存。用于SB的提出的结构,也是对于未来纳米纳米型应用的应用可能是潜在的有趣的大型半导体。 BI结构具有直接非测量带隙的非拓扑性质。由于Bi原子中的强型内在旋转轨道耦合,因此示出了从布里渊区中心的带反转出现的非竞争间隙。此外,我们通过提高六个原子环与四个原子环的比例来证明可以调整这些材料的性质,这导致更宽的非频带间隙和更低的地层能量。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2017年第4期| 035123.1-035123.8| 共8页
  • 作者单位

    International Center for Quantum Materials School of Physics Peking University Beijing 100871 China and Collaborative Innovation Center of Quantum Matter Beijing 100871 China;

    Department of Physics University of Antwerp Groenenborgerlaan 171 B-2020 Antwerp Belgium;

    Department of Physics University of Antwerp Groenenborgerlaan 171 B-2020 Antwerp Belgium;

    International Center for Quantum Materials School of Physics Peking University Beijing 100871 China and Collaborative Innovation Center of Quantum Matter Beijing 100871 China;

    Department of Physics University of Antwerp Groenenborgerlaan 171 B-2020 Antwerp Belgium;

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