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A first-principles study of the stability and mechanical properties of ternary transition metal carbide alloys

机译:三元过渡金属碳化物合金的稳定性和力学性能的第一性原理研究

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摘要

235101.1-234101.12%First-principles calculations were carried out to investigate electronic structure, phase stability, elastic properties, Debye temperature, and hardness of the TiC-HfC and TiC-TaC random solid solutions as functions of composition. For TiC-HfC, significant miscibility gaps with consolute temperatures about 1975K are revealed in the binodal and spinodal curves. The negative deviation of the elastic moduli and hardness from linearity are obtained for TiC-HfC, whereas, for TiC-TaC, these characteristics are above their linear interpolation between the end members. Concentration dependences of the Debye temperature for both systems have a negative curvature. To clarify a possible mechanism of stabilization or destabilization of these solid solutions and other similar carbide systems, mixing energies of the M1 xM2xC alloys, where M1 and M2 are the transition metals of the IV, V, and partially VI groups, were calculated. It is found that the behavior of mixing energies for the M1C-M2C alloys with M1 and M2 of different groups depending on composition is determined by the difference between cell volumes of the end members, C, the degree of occupancy of the metal band, and the shape of the density of states in the metal band region. Values of C mainly are responsible for positive mixing energies of the alloys with valence electron concentrations (VECs) equal to 8 and 9 for which occupancy of the metal band weakly changes with composition. The maximum hardness of the solid solutions for which VECs of the end members are different is predicted to be reached for the compositions with VECs=8.5-8.75.
机译:235101.1-234101.12%进行了第一性原理计算,以研究TiC-HfC和TiC-TaC无规固溶体的电子结构,相稳定性,弹性,德拜温度和硬度作为组成的函数。对于TiC-HfC,在双曲线和旋节线曲线中显示出约1975K的恒定温度下的明显混溶性缺口。对于TiC-HfC,获得了弹性模量和硬度与线性的负偏差,而对于TiC-TaC,则这些特性高于其在端部构件之间的线性插值。两个系统的德拜温度的浓度依赖性具有负曲率。为了阐明这些固溶体和其他类似碳化物体系稳定或去稳定的可能机理,计算了M1 xM2xC合金(其中M1和M2是IV,V和部分VI组的过渡金属)的混合能。已经发现,M1C-M2C合金的M1和M2不同组的混合能的行为取决于组成,这取决于端部元件的孔体积,C,金属带的占有程度和金属带区域中的状态密度的形状。 C的值主要负责价电子浓度(VECs)等于8和9的合金的正混合能,因此,金属带的占有率随组成而微弱地变化。对于具有VEC = 8.5-8.75的组合物,预计将达到其末端成员的VEC不同的固溶体的最大硬度。

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  • 来源
    《Journal of Applied Physics》 |2019年第23期|235101.1-234101.12|共12页
  • 作者单位

    NAS Ukraine, Inst Problems Mat Sci, Krzhyzhanovsky Str 3, UA-03680 Kiev, Ukraine;

    Lawrence Livermore Natl Lab, L-352,POB 808, Livermore, CA 94551 USA;

    NAS Ukraine, Inst Problems Mat Sci, Krzhyzhanovsky Str 3, UA-03680 Kiev, Ukraine;

    NAS Ukraine, Inst Problems Mat Sci, Krzhyzhanovsky Str 3, UA-03680 Kiev, Ukraine;

    Jackson State Univ, Dept Chem & Biochem, Interdisciplinary Ctr Nanotox, Jackson, MS 39217 USA|Badger Tech Serv LLC, Vicksburg, MS 39180 USA;

    Jackson State Univ, Dept Chem & Biochem, Interdisciplinary Ctr Nanotox, Jackson, MS 39217 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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