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Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study

In recent years, the two-dimensional (2D) orthorhombic SiP(2) flake has been peeled off successfully by micromechanical exfoliation and it exhibits an excellent performance in photodetection. In this paper, we investigated the mechanical properties and the origin of its anisotropy in an orthorhombic...

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Autores principales: Hou, Yinlong, Ren, Kai, Wei, Yu, Yang, Dan, Cui, Zhen, Wang, Ke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10535868/
https://www.ncbi.nlm.nih.gov/pubmed/37764290
http://dx.doi.org/10.3390/molecules28186514
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author Hou, Yinlong
Ren, Kai
Wei, Yu
Yang, Dan
Cui, Zhen
Wang, Ke
author_facet Hou, Yinlong
Ren, Kai
Wei, Yu
Yang, Dan
Cui, Zhen
Wang, Ke
author_sort Hou, Yinlong
collection PubMed
description In recent years, the two-dimensional (2D) orthorhombic SiP(2) flake has been peeled off successfully by micromechanical exfoliation and it exhibits an excellent performance in photodetection. In this paper, we investigated the mechanical properties and the origin of its anisotropy in an orthorhombic SiP(2) monolayer through first-principles calculations, which can provide a theoretical basis for utilizing and tailoring the physical properties of a 2D orthorhombic SiP(2) in the future. We found that the Young’s modulus is up to 113.36 N/m along the a direction, while the smallest value is only 17.46 N/m in the b direction. The in-plane anisotropic ratio is calculated as 6.49, while a similar anisotropic ratio (~6.55) can also be observed in Poisson’s ratio. Meanwhile, the in-plane anisotropic ratio for the fracture stress of the orthorhombic SiP(2) monolayer is up to 9.2. These in-plane anisotropic ratios are much larger than in black phosphorus, ReS(2), and biphenylene. To explain the origin of strong in-plane anisotropy, the interatomic force constants were obtained using the finite-displacement method. It was found that the maximum of interatomic force constant along the a direction is 5.79 times of that in the b direction, which should be considered as the main origin of the in-plane anisotropy in the orthorhombic SiP(2) monolayer. In addition, we also found some negative Poisson’s ratios in certain specific orientations, allowing the orthorhombic SiP(2) monolayer to be applied in next-generation nanomechanics and nanoelectronics.
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spelling pubmed-105358682023-09-29 Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study Hou, Yinlong Ren, Kai Wei, Yu Yang, Dan Cui, Zhen Wang, Ke Molecules Article In recent years, the two-dimensional (2D) orthorhombic SiP(2) flake has been peeled off successfully by micromechanical exfoliation and it exhibits an excellent performance in photodetection. In this paper, we investigated the mechanical properties and the origin of its anisotropy in an orthorhombic SiP(2) monolayer through first-principles calculations, which can provide a theoretical basis for utilizing and tailoring the physical properties of a 2D orthorhombic SiP(2) in the future. We found that the Young’s modulus is up to 113.36 N/m along the a direction, while the smallest value is only 17.46 N/m in the b direction. The in-plane anisotropic ratio is calculated as 6.49, while a similar anisotropic ratio (~6.55) can also be observed in Poisson’s ratio. Meanwhile, the in-plane anisotropic ratio for the fracture stress of the orthorhombic SiP(2) monolayer is up to 9.2. These in-plane anisotropic ratios are much larger than in black phosphorus, ReS(2), and biphenylene. To explain the origin of strong in-plane anisotropy, the interatomic force constants were obtained using the finite-displacement method. It was found that the maximum of interatomic force constant along the a direction is 5.79 times of that in the b direction, which should be considered as the main origin of the in-plane anisotropy in the orthorhombic SiP(2) monolayer. In addition, we also found some negative Poisson’s ratios in certain specific orientations, allowing the orthorhombic SiP(2) monolayer to be applied in next-generation nanomechanics and nanoelectronics. MDPI 2023-09-08 /pmc/articles/PMC10535868/ /pubmed/37764290 http://dx.doi.org/10.3390/molecules28186514 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hou, Yinlong
Ren, Kai
Wei, Yu
Yang, Dan
Cui, Zhen
Wang, Ke
Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title_full Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title_fullStr Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title_full_unstemmed Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title_short Anisotropic Mechanical Properties of Orthorhombic SiP(2) Monolayer: A First-Principles Study
title_sort anisotropic mechanical properties of orthorhombic sip(2) monolayer: a first-principles study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10535868/
https://www.ncbi.nlm.nih.gov/pubmed/37764290
http://dx.doi.org/10.3390/molecules28186514
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