Predicting Novel 2D MB2 (M = Ti, Hf, V, Nb, Ta) Monolayers with Ultrafast Dirac Transport Channel and Electron-Orbital Controlled Negative Poisson’s Ratio
Author(s) -
Chunmei Zhang,
Tianwei He,
Sri Kasi Matta,
Ting Liao,
Liangzhi Kou,
Zhongfang Chen,
Aijun Du
Publication year - 2019
Publication title -
the journal of physical chemistry letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.563
H-Index - 203
ISSN - 1948-7185
DOI - 10.1021/acs.jpclett.9b00762
Subject(s) - monolayer , poisson's ratio , orbital hybridisation , materials science , dirac (video compression format) , auxetics , crystallography , atomic orbital , condensed matter physics , electron , nanotechnology , chemistry , physics , composite material , poisson distribution , quantum mechanics , statistics , mathematics , valence bond theory , nuclear physics , neutrino
Three-dimensional diborides MB 2 , featured in stacking the M layer above the middle of the honeycomb boron layer, have been extensively studied. However, little information on the two-dimensional counterparts of MB 2 is available. Here, by means of evolutionary algorithm and first-principles calculations, we extensively studied the monolayer MB 2 crystal with M elements ranging from group IIA to IVA covering 34 candidates. Our computations screened out eight stable monolayers MB 2 (M = Be, Mg, Fe, Ti, Hf, V, Nb, Ta), and they exhibit Dirac-like band structures. Dramatically, among them, groups IVB-VB transition-metal diboride MB 2 (M = Ti, Hf, V, Nb, Ta) are predicted to be a new class of auxetic materials. They harbor in-plane negative Poisson's ratio (NPR) arising mainly from the orbital hybridization between M d and Boron p orbitals, which is distinct from previously reported auxetic materials. The unusual NPR and the Dirac transport channel of these materials are applicable to nanoelectronics and nanomechanics.
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