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LEINER, T. KOUTNÁ, N. JANOVEC, J. ZELENÝ, M. MAYRHOFER, P. HOLEC, D.
Original Title
On energetics of allotrope transformations in transition-metal diborides via plane-by-plane shearing
Type
journal article in Web of Science
Language
English
Original Abstract
Transition metal diborides crystallize in the a, y, or w type structure, in which pure transition metal layers alternate with pure boron layers stacked along the hexagonal [0001] axis. Here we view the prototypes as different stackings of the transition metal planes and suppose they can transform from one into another by a displacive transformation. Employing first-principles calculations, we simulate sliding of individual planes in the group IV-VII transition metal diborides along a transformation pathway connecting the a, y, and w structure. Chemistry-related trends are predicted in terms of energetic and structural changes along a transformation pathway, together with the mechanical and dynamical stability of the different stackings. Our results suggest that MnB2 and MoB2 possess the overall lowest sliding barriers among the investigated TMB2s. Furthermore, we discuss trends in strength and ductility indicators, including Young's modulus or Cauchy pressure, derived from elastic constants.
Keywords
Ab initio calculations; Transition metal diborides; Shear; Stacking sequence; Phase stability
Authors
LEINER, T.; KOUTNÁ, N.; JANOVEC, J.; ZELENÝ, M.; MAYRHOFER, P.; HOLEC, D.
Released
29. 6. 2023
Publisher
Elsevier
Location
OXFORD
ISBN
1879-2715
Periodical
VACUUM
Year of study
215
Number
1
State
United Kingdom of Great Britain and Northern Ireland
Pages from
112329
Pages to
-
Pages count
9
URL
https://www.sciencedirect.com/science/article/pii/S0042207X23005262
Full text in the Digital Library
http://hdl.handle.net/11012/244959
BibTex
@article{BUT184357, author="Thomas {Leiner} and Nikola {Koutná} and Jozef {Janovec} and Martin {Zelený} and Paul {Mayrhofer} and David {Holec}", title="On energetics of allotrope transformations in transition-metal diborides via plane-by-plane shearing", journal="VACUUM", year="2023", volume="215", number="1", pages="9", doi="10.1016/j.vacuum.2023.112329", issn="1879-2715", url="https://www.sciencedirect.com/science/article/pii/S0042207X23005262" }