4.7 Article

Density functional theory insights into ternary layered boride MoAlB

Journal

ACTA MATERIALIA
Volume 132, Issue -, Pages 69-81

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2017.04.031

Keywords

MAB phases; Layered structure; First principles; Electronic structure; Bonding; Elastic properties

Funding

  1. National Natural Science Foundation of China [11302061]
  2. Foundation for Innovative Research Groups of the National Natural Science Foundation of China [11421091]
  3. Research Fund for the Doctoral Program of Higher Education of China [20132302120024]
  4. China Postdoctoral Science Foundation [2013M531033]
  5. Fundamental Research Funds for the Central Universities
  6. International Postdoctoral Exchange Fellowship Program [20130004]
  7. STFC Hartree Centre

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Density functional theory is used to provide theoretical insights into the ternary nanolaminated and layered transition metal boride (MAB phase) of MoAlB, with calculations of crystal structure, electronic structure, lattice dynamics and elastic properties, including a corresponding hypothetical MAX phase compound Mo2AlC for comparison. The calculated atomic configuration matches well with experiment. The metal-like electronic structure contributes to the physical origin of the high electrical conductivity of MoAlB. Strong covalent bonding is present between the B atoms, as well as between the Mo and B atoms, and significantly the much weaker Al-Al bonds are consistent with the high fracture toughness and damage tolerance seen in MoAlB. With increasing pressure, the shrinkage is highest along the b axis, and lowest along the c axis. From the calculated second-order elastic constants, the bulk moduli B, shear moduli G, Young's moduli E and Poisson ratio mu are 207 GPa, 137 GPa, 336 GPa and 0.23, respectively. The G/B ratio of 0.66-similar in magnitude to values in MAX phases-demonstrate similarities in properties between MAB and MAX phases. Lattice dynamics are examined in detail, with 9 Raman-active modes and 6 infrared-active modes identified and analyzed in terms of their atomic motion and wavenumbers. (C) 2017 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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