Study of the Electronic Band Structure and Structural Stability of Al(CN)2 and Si(CN)2 by Density Functional Theory
Author:
Tam Sok-I1ORCID, Leong Pak-Kin2ORCID, Tang Chi-Pui12ORCID, Leong Weng-Hang1ORCID, Sekine Toshimori3ORCID, Tang Chi-Long2ORCID, Tam Kuan-Vai4ORCID, U Kin-Tak1ORCID
Affiliation:
1. Faculty of Innovation Engineering, Macau University of Science and Technology, Taipa, Macao 999078, China 2. State Key Laboratory of Lunar and Planetary Sciences, Macau University of Science and Technology, Taipa, Macao 999078, China 3. Center for High Pressure Science and Technology Advanced Research, Shanghai 201203, China 4. School of Astronomy and Space Science, Nanjing University, Nanjing 210093, China
Abstract
By substituting the A site in P21/c-A(CN)2 and varying the lattice parameters a, b, c, and the unit-cell angles, along with using crystal graph convolutional neural networks to calculate their cohesive energy, the candidate compounds, Al(CN)2 and Si(CN)2, were selected from the structure with the lowest cohesive energy. The two candidate structures were then optimized using first-principles calculations, and their phonon, electronic, and elastic properties were computed. As a result, two dynamically stable structures were found: Al(CN)2 with a space group of Cmcm and Si(CN)2 with a space group of R3¯m. Their phonon spectra exhibited no imaginary frequencies; thus, their elastic constants satisfied the mechanical stability criteria. Structurally, Si(CN)2 is similar to 6H-SiC and 15R-SiC. Its elastic constants indicated that it is harder than those SiC materials. Al(CN)2 exhibits metallic properties and the indirect wide-bandgap of Si(CN)2 was calculated by the generalized gradient approximation, the local density approximation, and the screened hybrid functional of Heyd, Scuseria, and Ernzerhof (HSE06) is found to be 3.093, 3.048, and 4.589 eV, respectively. According to this wide bandgap, we can conclude that Si(CN)2 has the potential to be used in high-temperature and high-power environments, making it usable in a broad range of applications.
Funder
Science and Technology Development Fund (FDCT) of Macau National Natural Science Foundation of China
Subject
Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering
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