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research article

Stretching and Breaking of Ultrathin MoS2

Bertolazzi, Simone  
•
Brivio, Jacopo  
•
Kis, Andras  
2011
ACS Nano

We report on measurements of the stiffness and breaking strength of monolayer MoS2, a new semiconducting analogue of graphene. Single and bilayer MoS2 is exfoliated from bulk and transferred to a substrate containing an array of microfabricated circular holes. The resulting suspended, free-standing membranes are deformed and eventually broken using an atomic force microscope. We find that the in-plane stiffness of monolayer MoS2 is 180 ± 60 Nm-1, corresponding to an effective Young’s modulus of 270 ± 100 GPa which is comparable to that of steel. Breaking occurs at an effective strain between 6-11% with the average breaking strength of 15 ± 3 Nm-1 (23GPa). The strength of strongest monolayer membranes is 11% of its Young’s modulus, corresponding to the upper theoretical limit which indicates that the material can be highly crystalline and almost defect-free. Our results show that monolayer MoS2 could be suitable for a variety of applications such as reinforcing elements in composites and for fabrication of flexible electronic devices.

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Type
research article
DOI
10.1021/nn203879f
Web of Science ID

WOS:000298316700042

Author(s)
Bertolazzi, Simone  
Brivio, Jacopo  
Kis, Andras  
Date Issued

2011

Published in
ACS Nano
Volume

5

Issue

12

Start page

9703

End page

9709

Subjects

two-dimensional materials

•

dichalcogenides

•

MoS2

•

AFM

•

mechanical properties

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LANES  
Available on Infoscience
November 18, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/72662
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