Ultrahigh stiffness and anisotropic Dirac cones in BeN4 and MgN4 monolayers

a first-principles study

Verfasst von

B. Mortazavi, F. Shojaei, X. Zhuang

Abstract

Beryllium polynitrides, (BeN4) is a novel layered material, which has been most recently fabricated under high pressure (Phys. Rev. Lett. 126 (2021), 175501). As a new class of two-dimensional (2D) materials, in this work, we conduct first-principles calculations to examine the stability and explore the electronic nature of MN4 (M = Be, Mg, Ir, Rh, Ni, Cu, Au, Pd, and Pt) monolayers. Acquired results confirm the dynamical and thermal stability of BeN4, MgN4, IrN4, PtN4, and RhN4 monolayers. Interestingly, BeN4 and MgN4 monolayers are found to show anisotropic Dirac cones in their electronic structure. Although PtN4 monolayer is predicted to be a narrow bandgap semiconductor, IrN4 and RhN4 monolayers are found to be metallic systems. We also elaborately explore the effects of the number of atomic layers on the electronic features of BeN4 nanosheets, which reveal highly appealing physics. Our results highlight that BeN4 nanosheet yield ultrahigh elastic modulus and mechanical strength, outperforming all other carbon-free 2D materials. Notably, RhN4 nanosheet is predicted to yield high capacities of 562, 450, and 900 mAh/g for Li, Na, and Ca ions storages, respectively. This study provides a comprehensive understanding of the intrinsic properties of MN4 nanosheets and highlights their outstanding physics.

Details

Organisationseinheit(en)
Institut für Photonik
PhoenixD: Simulation, Fabrikation und Anwendung optischer Systeme
Externe Organisation(en)
Persian Gulf University
Tongji University
Typ
Artikel
Journal
Materials Today Nano
Band
15
Publikationsdatum
08.2021
Publikationsstatus
Veröffentlicht
Peer-reviewed
Ja
ASJC Scopus Sachgebiete
Elektronische, optische und magnetische Materialien, Biomaterialien, Physik der kondensierten Materie, Werkstoffchemie
Elektronische Version(en)
https://doi.org/10.48550/arXiv.2105.09733 (Zugang: Offen )
https://doi.org/10.1016/j.mtnano.2021.100125 (Zugang: Geschlossen )
 
PDF
PDF
Scopus-Zitationen
47
Field-Weighted Citation Impact (FWCI)
2.78
Zuletzt geändert
01.02.2026 04:37

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