Effect of the Structure Morphology on the Mechanical Properties of Crumpled Graphene Fiber

Author:

Baimova JuliaORCID,Polyakova Polina,Shcherbinin Stepan

Abstract

Crumpled graphene fiber is a promising structure to be a graphene precursor to enhance the production and mechanical properties of various carbon fibers. The primary goal of the present work is to study the crumpled graphene of different morphologies using molecular dynamics simulations to find the effect of the structural peculiarities on the mechanical properties, such as the tensile strength, elastic modulus, and deformation characteristics. Mono- and poly-disperse structures are considered under uniaxial tension along two different axes. As it is found, both structures are isotropic and stress–strain curves for tension along different directions are very similar. Young’s modulus of crumpled graphene is close, about 50 and 80 GPa; however, the strength of the polydisperse structure is bigger at the elastic regime. While a monodisperse structure can in-elastically deform until high tensile strength of 90 GPa, structure analysis showed that polydisperse crumpled graphene fiber pores appeared two times faster than the monodisperse ones.

Funder

Ministry of Science and Higher Education of the Russian Federation as part of World-class Research Center program: Advanced Digital Technologies

Publisher

MDPI AG

Subject

Mechanics of Materials,Biomaterials,Civil and Structural Engineering,Ceramics and Composites

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Thermal Property of Fullerene Fibers: One‐Dimensional Material with Exceptional Thermal Performance;Small;2024-01-14

2. Methodology for Calculation of Elastic Constants of Diamane by Molecular Dynamics;2023 IEEE 24th International Conference of Young Professionals in Electron Devices and Materials (EDM);2023-06-29

3. Graphene Network with Ni and Al Nanoparticles as the Composite Precursor: Atomistic Simulation;2023 IEEE 24th International Conference of Young Professionals in Electron Devices and Materials (EDM);2023-06-29

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