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Mechanics of nanowire/nanotube in-surface buckling on elastomeric substrates

Authors
Xiao, J.Ryu, S. Y.Huang, Y.Hwang, K-CPaik, U.Rogers, J. A.
Issue Date
Feb-2010
Publisher
IOP PUBLISHING LTD
Citation
NANOTECHNOLOGY, v.21, no.8, pp.1 - 9
Indexed
SCIE
SCOPUS
Journal Title
NANOTECHNOLOGY
Volume
21
Number
8
Start Page
1
End Page
9
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/175523
DOI
10.1088/0957-4484/21/8/085708
ISSN
0957-4484
Abstract
A continuum mechanics theory is established for the in-surface buckling of one-dimensional nanomaterials on compliant substrates, such as silicon nanowires on elastomeric substrates observed in experiments. Simple analytical expressions are obtained for the buckling wavelength, amplitude and critical buckling strain in terms of the bending and tension stiffness of the nanomaterial and the substrate elastic properties. The analysis is applied to silicon nanowires, single-walled carbon nanotubes, multi-walled carbon nanotubes, and carbon nanotube bundles. For silicon nanowires, the measured buckling wavelength gives Young's modulus to be 140 GPa, which agrees well with the prior experimental studies. It is shown that the energy for in-surface buckling is lower than that for normal (out-of-surface) buckling, and is therefore energetically favorable.
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