Graphene has gained significant attention in recent decades owing to its exceptional mechanical and electrical properties, playing a crucial role in engineering nanotechnologies across various fields. However, investigating the mechanical properties of graphene experimentally poses considerable challenges due to its small scale, resulting in a scarcity of reliable experimental data in the literature. Consequently, harnessing the full potential of its remarkable characteristics requires accurate modeling methods. In this work, we propose a nonlinear molecular mechanics model and we integrate it into a finite element software to explore the size effect in graphene. Our simulations reveal that beyond a certain threshold size, the mechanical response of graphene ceases to be size-dependent, marking a transition from molecular to continuum modeling. Consequently, we develop a continuum hyperelastic model for graphene membranes subjected to plane deformations and lateral pressure, representing common stress states in practical nanotechnology applications. These models are based on nonlinear elasticity, providing a robust framework for accurately predicting graphene mechanics under real-world stress conditions.

Bridging Scales in Graphene Modeling: From Molecular Mechanics to Continuum Theories / Pelliciari, M., Tarantino, A.M., Lanzoni, L.. - (2026), pp. 136-142. (26th Conference of the Italian Association of Theoretical and Applied Mechanics, AIMETA 2024 ita 2024) [10.1007/978-3-032-17231-0_17].

Bridging Scales in Graphene Modeling: From Molecular Mechanics to Continuum Theories

Pelliciari M.
;
Tarantino A. M.;Lanzoni L.
2026

Abstract

Graphene has gained significant attention in recent decades owing to its exceptional mechanical and electrical properties, playing a crucial role in engineering nanotechnologies across various fields. However, investigating the mechanical properties of graphene experimentally poses considerable challenges due to its small scale, resulting in a scarcity of reliable experimental data in the literature. Consequently, harnessing the full potential of its remarkable characteristics requires accurate modeling methods. In this work, we propose a nonlinear molecular mechanics model and we integrate it into a finite element software to explore the size effect in graphene. Our simulations reveal that beyond a certain threshold size, the mechanical response of graphene ceases to be size-dependent, marking a transition from molecular to continuum modeling. Consequently, we develop a continuum hyperelastic model for graphene membranes subjected to plane deformations and lateral pressure, representing common stress states in practical nanotechnology applications. These models are based on nonlinear elasticity, providing a robust framework for accurately predicting graphene mechanics under real-world stress conditions.
2026
no
Inglese
26th Conference of the Italian Association of Theoretical and Applied Mechanics, AIMETA 2024
ita
2024
Lecture Notes in Mechanical Engineering
136
142
9783032172303
9783032172310
Springer Science and Business Media Deutschland GmbH
Graphene; Nonlinear Mechanics; Size Effect
Pelliciari, M.; Tarantino, A. M.; Lanzoni, L.
Atti di CONVEGNO::Relazione in Atti di Convegno
273
3
Bridging Scales in Graphene Modeling: From Molecular Mechanics to Continuum Theories / Pelliciari, M., Tarantino, A.M., Lanzoni, L.. - (2026), pp. 136-142. (26th Conference of the Italian Association of Theoretical and Applied Mechanics, AIMETA 2024 ita 2024) [10.1007/978-3-032-17231-0_17].
none
info:eu-repo/semantics/conferenceObject
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1410170
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