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First-principles study of crystalline and amorphous AlMgB_(14)-based materials

机译:晶体和非晶AlMgB_(14)基材料的第一性原理研究

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We report first-principles investigations of crystalline and amorphous boron and M1_xM2_yX_zB_(14-z) (M1, M2 = A1, Mg, Li, Na, Y; X = Ti, C, Si) phases (so-called "BAM" materials). Phase stability is analyzed in terms of formation energy and dynamical stability. The atomic configurations as well as the electronic and phonon density states of these phases are compared. Amorphous boron consists of distorted icosahedra, icosahedron fragments, and dioctahedra, connected by an amorphous network. The presence of metal atoms in amorphous BAM materials precludes the formation of icosahedra. For all the amorphous structures considered here, the Fermi level is located in the mobility gap independent of the number of valence electrons. The intra-icosahedral vibrations are localized in the range of 800 cm~(-1), whereas the inter-icosahedral vibrations appear at higher wavenumbers. The amorphization leads to an enhancement of the vibrations in the range of 1100-1250 cm~(-1). The mechanical properties of BAM materials are investigated at equilibrium and under shear and tensile strain. The anisotropy of the ideal shear and tensile strengths is explained in terms of a layered structure of the B_(12) units. The strength of amorphous BAM materials is lower than that of the crystalline counterparts because of the partial fragmentation of the boron icosahedra in amorphous structures. The strength enhancement found experimentally for amorphous boron-based films is very likely related to an increase in film density, and the presence of oxygen impurities. For crystalline BAM materials, the icosahedra are preserved during elongation upon tension as well as upon shear in the (010)[100] slip system.
机译:我们报告晶体和非晶态硼和M1_xM2_yX_zB_(14-z)(M1,M2 = A1,Mg,Li,Na,Y; X = Ti,C,Si)相(所谓的“ BAM”材料)的第一性原理研究)。根据地层能量和动力学稳定性分析了相稳定性。比较这些相的原子构型以及电子和声子密度状态。非晶硼由扭曲的二十面体,二十面体碎片和二面体组成,它们通过非晶网络连接。非晶态BAM材料中金属原子的存在阻止了二十面体的形成。对于此处考虑的所有非晶结构,费米能级位于迁移率间隙中,与价电子数无关。二十面体内的振动局限在800 cm〜(-1)范围内,而二十面体间的振动则出现在较高的波数下。非晶化导致1100-1250 cm〜(-1)范围内的振动增强。在平衡,剪切和拉伸应变下研究了BAM材料的力学性能。理想的抗剪强度和抗张强度的各向异性通过B_(12)单元的分层结构来解释。非晶态BAM材料的强度低于结晶态对应物的强度,因为非晶态结构中二十面体硼的部分碎裂。实验上发现的基于非晶硼的薄膜的强度增强很可能与薄膜密度的增加以及氧杂质的存在有关。对于结晶BAM材料,在(010)[100]滑移系统中,拉伸和拉伸过程中均保留二十面体。

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  • 来源
    《Journal of Applied Physics 》 |2016年第20期| 205105.1-205105.13| 共13页
  • 作者单位

    Institute of Problems of Material Science, National Academy of Science of Ukraine, Krzhyzhanosky Str. 3, 03142 Kyiv, Ukraine;

    Lawrence Livermore National Laboratory (L-352), P.O. Box 808, Livermore, California 94551, USA;

    Department of Chemistry, Technical University Munich, Lichtenbergstrasse 4, D-85747 Garching, Germany;

    Institute of Problems of Material Science, National Academy of Science of Ukraine, Krzhyzhanosky Str. 3, 03142 Kyiv, Ukraine;

    Department of Chemistry and Biochemistry, Interdisciplinary Center for Nanotoxicity, Jackson State University, Jackson, Mississippi 39217, USA;

    Department of Chemistry and Biochemistry, Interdisciplinary Center for Nanotoxicity, Jackson State University, Jackson, Mississippi 39217, USA,Badger Technical Services, LLC, Vicksburg, Mississippi 39180, USA;

    U.S. Army ERDC, Vicksburg, Mississippi 39180, USA;

  • 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);
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  • 正文语种 eng
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