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dc.contributor.author
Aparicio, Emiliano  
dc.contributor.author
Tangarife, E.  
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Munoz, F.  
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Gonzalez, R. I.  
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Valencia, F. J.  
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Careglio, Claudio Ariel  
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Bringa, Eduardo Marcial  
dc.date.available
2022-09-19T20:26:26Z  
dc.date.issued
2020-01  
dc.identifier.citation
Aparicio, Emiliano; Tangarife, E.; Munoz, F.; Gonzalez, R. I.; Valencia, F. J.; et al.; Simulated mechanical properties of finite-size graphene nanoribbons; IOP Publishing; Nanotechnology; 32; 4; 1-2020  
dc.identifier.issn
0957-4484  
dc.identifier.uri
http://hdl.handle.net/11336/169396  
dc.description.abstract
There are many simulation studies of mechanical properties of graphene nanoribbons (GNR), but there is a lack of agreement regarding elastic and plastic behavior. In this paper we aim to analyze mechanical properties of finite-size GNR, including elastic modulus and fracture, as a function of ribbon size. We present classical molecular dynamics simulations for three different empirical potentials which are often used for graphene simulations: AIREBO, REBO-scr and REAXFF. Ribbons with and without H-passivation at the borders are considered, and the effects of strain rate and different boundaries are also explored. We focus on zig-zag GNR, but also include some armchair GNR examples. Results are strongly dependent on the empirical potential employed. Elastic modulus under uniaxial tension can depend on ribbon size, unlike predictions from continuum-scale models and from some atomistic simulations, and fracture strain and progress vary significantly amongst the simulated potentials. Because of that, we have also carried out quasi-static ab-initio simulations for a selected size, and find that the fracture process is not sudden, instead the wave function changes from Blöch states to a strong interaction between localized waves, which decreases continuously with distance. All potentials show good agreement with DFT in the linear elastic regime, but only the REBO-scr potential shows reasonable agreement with DFT both in the nonlinear elastic and fracture regimes. This would allow more reliable simulations of GNRs and GNR-based nanostructures, to help interpreting experimental results and for future technological applications.  
dc.format
application/pdf  
dc.language.iso
eng  
dc.publisher
IOP Publishing  
dc.rights
info:eu-repo/semantics/restrictedAccess  
dc.rights.uri
https://creativecommons.org/licenses/by-nc-sa/2.5/ar/  
dc.subject
DFT SIMULATIONS  
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GRAPHENE NANORIBBON  
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MECHANICAL PROPERTIES  
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MOLECULAR DYNAMICS  
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Ingeniería de los Materiales  
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Ingeniería de los Materiales  
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INGENIERÍAS Y TECNOLOGÍAS  
dc.title
Simulated mechanical properties of finite-size graphene nanoribbons  
dc.type
info:eu-repo/semantics/article  
dc.type
info:ar-repo/semantics/artículo  
dc.type
info:eu-repo/semantics/publishedVersion  
dc.date.updated
2022-09-13T17:21:45Z  
dc.journal.volume
32  
dc.journal.number
4  
dc.journal.pais
Reino Unido  
dc.journal.ciudad
Londres  
dc.description.fil
Fil: Aparicio, Emiliano. Universidad de Mendoza; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
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Fil: Tangarife, E.. Universidad Mayor; Chile  
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Fil: Munoz, F.. Universidad de Chile; Chile  
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Fil: Gonzalez, R. I.. Universidad Mayor; Chile. Centro para el Desarrollo de la Nanociencia y la Nanotecnología; Chile  
dc.description.fil
Fil: Valencia, F. J.. Universidad Mayor; Chile. Centro para el Desarrollo de la Nanociencia y la Nanotecnología; Chile  
dc.description.fil
Fil: Careglio, Claudio Ariel. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina. Universidad Nacional de Cuyo; Argentina  
dc.description.fil
Fil: Bringa, Eduardo Marcial. Universidad Mayor; Chile. Universidad de Mendoza; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.journal.title
Nanotechnology  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/url/https://iopscience.iop.org/article/10.1088/1361-6528/abc036  
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/doi/http://dx.doi.org/10.1088/1361-6528/abc036