Ultrahigh-Density Superhard Hexagonal BN and SiC with Quartz Topology from Crystal Chemistry and First Principles

Author:

Matar Samir F.1ORCID,Solozhenko Vladimir L.2ORCID

Affiliation:

1. CMMS, Lebanese German University, Jounieh P.O. Box 206, Lebanon

2. LSPM–CNRS, Université Sorbonne Paris Nord, 93430 Villetaneuse, France

Abstract

Based on superdense C6 with a quartz (qtz) topology, new ultrahigh-density hexagonal binary phases, qtz BN and qtz SiC, were identified via full geometry structure relaxations and ground state energies using calculations based on the quantum density functional theory (DFT) with a gradient GGA exchange–correlation XC functional. Like qtz C6, with respect to diamond, the resulting binary qtz BN and qtz SiC were found to be less cohesive than cubic BN and cubic SiC, respectively, but were confirmed to be mechanically (elastic constants) and dynamically (phonon band structures) stable. Higher densities of the new phases correlate with higher hardness values compared to cubic BN and cubic SiC. In contrast to the regular tetrahedra that characterize the cubic BN and SiC phases, the corner-sharing tetrahedra in the new phases are distorted, which accounts for their exceptional density and hardness. All three qtz phases were found to be semiconducting to insulators, with reduced band gaps compared to diamond, cubic BN, and cubic SiC.

Publisher

MDPI AG

Subject

Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering

Reference44 articles.

1. Myths about new ultrahard phases: Why materials that are significantly superior to diamond in elastic moduli and hardness are impossible;Brazhkin;J. Appl. Phys.,2019

2. Energy, compressibility and covalency in the carbon subgroup;Stishov;Philos. Mag. Lett.,2000

3. Lonsdaleite—A material stronger and stiffer than diamond than diamond;Li;Scr. Mater.,2011

4. Network topology approach to new allotropes of the group 14 elements;Z. Kristallogr.,2013

5. Topological representations of crystal structures: Generation, analysis and implementation in the TopCryst system;Shevchenko;Sci. Technol. Adv. Mat.,2022

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