Spatially nonuniform strain is important for engineering the pseudomagnetic field and band structure of graphene. Despite the wide interest in strain engineering, there is still a lack of control on device-compatible strain patterns due to the limited understanding of the structure-strain relationship. Here, we study the effect of substrate corrugation and curvature on the strain profiles of graphene via combined experimental and theoretical studies of a model system: graphene on closely packed SiO2 nanospheres with different diameters (20-200 nm). Experimentally, via quantitative Raman analysis, we observe partial adhesion and wrinkle features and find that smaller nanospheres induce larger tensile strain in graphene; theoretically, molecular dynamics simulations confirm the same microscopic structure and size dependence of strain and reveal that a larger strain is caused by a stronger, inhomogeneous interaction force between smaller nanospheres and graphene. This molecular-level understanding of the strain mechanism is important for strain engineering of graphene and other two-dimensional materials.

Strain Modulation of Graphene by Nanoscale Substrate Curvatures: A Molecular View

Zapperi S;
2018

Abstract

Spatially nonuniform strain is important for engineering the pseudomagnetic field and band structure of graphene. Despite the wide interest in strain engineering, there is still a lack of control on device-compatible strain patterns due to the limited understanding of the structure-strain relationship. Here, we study the effect of substrate corrugation and curvature on the strain profiles of graphene via combined experimental and theoretical studies of a model system: graphene on closely packed SiO2 nanospheres with different diameters (20-200 nm). Experimentally, via quantitative Raman analysis, we observe partial adhesion and wrinkle features and find that smaller nanospheres induce larger tensile strain in graphene; theoretically, molecular dynamics simulations confirm the same microscopic structure and size dependence of strain and reveal that a larger strain is caused by a stronger, inhomogeneous interaction force between smaller nanospheres and graphene. This molecular-level understanding of the strain mechanism is important for strain engineering of graphene and other two-dimensional materials.
2018
Istituto di Chimica della Materia Condensata e di Tecnologie per l'Energia - ICMATE
Inglese
18
3
2098
2104
https://pubs.acs.org/doi/10.1021/acs.nanolett.8b00273
Sì, ma tipo non specificato
strain
graphene
pseudomagnetic field
nanoparticles
2D material
deformation
Z.B. and S.Z. are supported by the ERC Advanced Grant No.291002 SIZEFFECTS.
10
info:eu-repo/semantics/article
262
Zhang, Y; Heiranian, M; Janicek, B; Budrikis, Z; Zapperi, S; Huang, Py; Johnson, Ht; Aluru, Nr; Lyding, Jw; Mason, N
01 Contributo su Rivista::01.01 Articolo in rivista
restricted
   Size effects in fracture and plasticity
   SIZEFFECTS
   FP7
   291002
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/350129
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