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  5. Development of a universal stress sensor for graphene and carbon fibres

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Article
English
2011

Development of a universal stress sensor for graphene and carbon fibres

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0 Files

English
2011
Nature Communications
Vol 2 (1)
DOI: 10.1038/ncomms1247

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Konstantin ‘kostya’  Novoselov
Konstantin ‘kostya’ Novoselov

The University of Manchester

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Otakar Frank
Georgia Tsoukleri
Ibtsam Riaz
+6 more

Abstract

Carbon fibres are a significant volume fraction of modern structural airframes. Embedded into polymer matrices, they provide significant strength and stiffness gains by unit weight compared with competing structural materials. Here we use the Raman G peak to assess the response of carbon fibres to the application of strain, with reference to the response of graphene itself. Our data highlight the predominance of the in-plane graphene properties in all graphitic structures examined. A universal master plot relating the G peak strain sensitivity to tensile modulus of all types of carbon fibres, as well as graphene, is presented. We derive a universal value of—average—phonon shift rate with axial stress of around −5ω0−1 (cm−1 MPa−1), where ω0 is the G peak position at zero stress for both graphene and carbon fibre with annular morphology. The use of this for stress measurements in a variety of applications is discussed. Embedding carbon fibres in polymer matrices provides significant gains in strength and stiffness. Here, the Raman G peak of carbon fibre is studied in relation to applied strain and referenced to graphene; the work could facilitate stress measurements of carbon fibre polymer composites.

How to cite this publication

Otakar Frank, Georgia Tsoukleri, Ibtsam Riaz, Konstantinos Papagelis, J. Parthenios, Andrea C. Ferrari, A. K. Geǐm, Konstantin ‘kostya’ Novoselov, Costas Galiotis (2011). Development of a universal stress sensor for graphene and carbon fibres. Nature Communications, 2(1), DOI: 10.1038/ncomms1247.

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Publication Details

Type

Article

Year

2011

Authors

9

Datasets

0

Total Files

0

Language

English

Journal

Nature Communications

DOI

10.1038/ncomms1247

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