» Articles » PMID: 34691872

Nanomechanics of Graphene

Overview
Journal Natl Sci Rev
Date 2021 Oct 25
PMID 34691872
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

The super-high strength of single-layer graphene has attracted great interest. In practice, defects resulting from thermodynamics or introduced by fabrication, naturally or artificially, play a pivotal role in the mechanical behaviors of graphene. More importantly, high strength is just one aspect of the magnificent mechanical properties of graphene: its atomic-thin geometry not only leads to ultra-low bending rigidity, but also brings in many other unique properties of graphene in terms of mechanics in contrast to other carbon allotropes, including fullerenes and carbon nanotubes. The out-of-plane deformation is of a 'soft' nature, which gives rise to rich morphology and is crucial for morphology control. In this review article, we aim to summarize current theoretical advances in describing the mechanics of defects in graphene and the theory to capture the out-of-plane deformation. The structure-mechanical property relationship in graphene, in terms of its elasticity, strength, bending and wrinkling, with or without the influence of imperfections, is presented.

Citing Articles

Recent advances in nanomaterials for the detection of mycobacterium tuberculosis (Review).

Zhu J, Wang H, Chen L Int J Mol Med. 2024; 55(3.

PMID: 39717951 PMC: 11722055. DOI: 10.3892/ijmm.2024.5477.


Graphene nano-electromechanical mass sensor with high resolution at room temperature.

Shin D, Kim H, Kim S, Cheong H, Steeneken P, Joo C iScience. 2023; 26(2):105958.

PMID: 36718371 PMC: 9883292. DOI: 10.1016/j.isci.2023.105958.


Various defects in graphene: a review.

Bhatt M, Kim H, Kim G RSC Adv. 2022; 12(33):21520-21547.

PMID: 35975063 PMC: 9347212. DOI: 10.1039/d2ra01436j.


Controllable Valley Polarization and Strain Modulation in 2D 2H-VS/CuInPSe Heterostructures.

Yang F, Shang J, Kou L, Li C, Deng Z Nanomaterials (Basel). 2022; 12(14).

PMID: 35889686 PMC: 9315968. DOI: 10.3390/nano12142461.


Phonon Thermal Transport in Silicene/Graphene Heterobilayer Nanostructures: Effect of Interlayer Interactions.

Zhou J, Li H, Tang H, Shao L, Han K, Shen X ACS Omega. 2022; 7(7):5844-5852.

PMID: 35224345 PMC: 8867570. DOI: 10.1021/acsomega.1c05932.


References
1.
Lusk M, Carr L . Nanoengineering defect structures on graphene. Phys Rev Lett. 2008; 100(17):175503. DOI: 10.1103/PhysRevLett.100.175503. View

2.
Ozyilmaz B, Jarillo-Herrero P, Efetov D, Abanin D, Levitov L, Kim P . Electronic transport and quantum hall effect in bipolar graphene p-n-p junctions. Phys Rev Lett. 2007; 99(16):166804. DOI: 10.1103/PhysRevLett.99.166804. View

3.
Campos-Delgado J, Romo-Herrera J, Jia X, Cullen D, Muramatsu H, Kim Y . Bulk production of a new form of sp(2) carbon: crystalline graphene nanoribbons. Nano Lett. 2008; 8(9):2773-8. DOI: 10.1021/nl801316d. View

4.
Novoselov K, Geim A, Morozov S, Jiang D, Zhang Y, Dubonos S . Electric field effect in atomically thin carbon films. Science. 2004; 306(5696):666-9. DOI: 10.1126/science.1102896. View

5.
Warner J, Lee G, He K, Robertson A, Yoon E, Kirkland A . Bond length and charge density variations within extended arm chair defects in graphene. ACS Nano. 2013; 7(11):9860-6. DOI: 10.1021/nn403517m. View