The Uncertainty Propagation for Carbon Atomic Interactions in Graphene under Resonant Vibration Based on Stochastic Finite Element Model.

carbon atomic interactions graphene stochastic finite element model uncertainty quantification

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
20 May 2022
Historique:
received: 15 03 2022
revised: 04 05 2022
accepted: 16 05 2022
entrez: 28 5 2022
pubmed: 29 5 2022
medline: 29 5 2022
Statut: epublish

Résumé

Graphene is one of the most promising two-dimensional nanomaterials with broad applications in many fields. However, the variations and fluctuations in the material and geometrical properties are challenging issues that require more concern. In order to quantify uncertainty and analyze the impacts of uncertainty, a stochastic finite element model (SFEM) is proposed to propagate uncertainty for carbon atomic interactions under resonant vibration. Compared with the conventional truss or beam finite element models, both carbon atoms and carbon covalent bonds are considered by introducing plane elements. In addition, the determined values of the material and geometrical parameters are expanded into the related interval ranges with uniform probability density distributions. Based on the SFEM, the uncertainty propagation is performed by the Monte Carlo stochastic sampling process, and the resonant frequencies of graphene are provided by finite element computation. Furthermore, the correlation coefficients of characteristic parameters are computed based on the database of SFEM. The vibration modes of graphene with the extreme geometrical values are also provided and analyzed. According to the computed results, the minimum and maximum values of the first resonant frequency are 0.2131 and 16.894 THz, respectively, and the variance is 2.5899 THz. The proposed SFEM is an effective method to propagate uncertainty and analyze the impacts of uncertainty in the carbon atomic interactions of graphene. The work in this paper provides an important supplement to the atomic interaction modeling in nanomaterials.

Identifiants

pubmed: 35629705
pii: ma15103679
doi: 10.3390/ma15103679
pmc: PMC9147503
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : National Natural Science Foundation of China
ID : 12102203
Organisme : National Natural Science Foundation of China
ID : 61901235
Organisme : Natural Science Foundation of Jiangsu Province
ID : BK20200971
Organisme : Natural Science Foundation of the Higher Education Institutions of Jiangsu Province
ID : 19KJB130001

Références

Sci Rep. 2018 Feb 15;8(1):3089
pubmed: 29449626
Nanomaterials (Basel). 2018 Jul 02;8(7):
pubmed: 30004459
Chemistry. 2018 Oct 1;24(55):14707-14711
pubmed: 30020549
Int J Mol Sci. 2021 May 01;22(9):
pubmed: 34062825
Science. 2008 Jul 18;321(5887):385-8
pubmed: 18635798
Phys Rev Lett. 2009 Jun 12;102(23):235502
pubmed: 19658947
J Phys Condens Matter. 2013 Mar 27;25(12):125302
pubmed: 23449217

Auteurs

Jiajia Shi (J)

School of Transportation and Civil Engineering, Nantong University, Nantong 226019, China.

Liu Chu (L)

School of Transportation and Civil Engineering, Nantong University, Nantong 226019, China.

Chao Ma (C)

School of Information Science and Technology, Nantong University, Nantong 226019, China.

Robin Braun (R)

Faculty of Engineering and Information Technology, University of Technology, Ultimo, Sydney, NSW 2007, Australia.

Classifications MeSH