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Ultrahigh Performance Nanoengineered Graphene-Concrete Composites for Multifunctional Applications

Dimov, Dimitar; Amit, Iddo; Gorrie, Olivier; Barnes, Matthew D; Townsend, Nicola J; Neves, Ana IS; Withers, Freddie; Russo, Saverio; Craciun, Monica Felicia

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Authors

Dimitar Dimov

Olivier Gorrie

Matthew D Barnes

Nicola J Townsend

Ana IS Neves

Freddie Withers

Saverio Russo

Monica Felicia Craciun



Abstract

There is a constant drive for development of ultrahigh performance multifunctional construction materials by the modern engineering technologies. These materials have to exhibit enhanced durability and mechanical performance, and have to incorporate functionalities that satisfy multiple uses in order to be suitable for future emerging structural applications. There is a wide consensus in the research community that concrete, the most used construction material worldwide, has to be engineered at the nanoscale, where its chemical and physiomechanical properties can be truly enhanced. Here, an innovative multifunctional nanoengineered concrete showing an unprecedented range of enhanced properties when compared to standard concrete, is reported. These include an increase of up to 146% in the compressive and 79.5% in the flexural strength, whilst at the same time an enhanced electrical and thermal performance is found. A surprising decrease in water permeability by nearly 400% compared to normal concrete makes this novel composite material ideally suitable for constructions in areas subject to flooding. The unprecedented gamut of functionalities that are reported in this paper are produced by the addition of water‐stabilized graphene dispersions, an advancement in the emerging field of nanoengineered concrete which can be readily applied in a more sustainable construction industry.

Citation

Dimov, D., Amit, I., Gorrie, O., Barnes, M. D., Townsend, N. J., Neves, A. I., …Craciun, M. F. (2018). Ultrahigh Performance Nanoengineered Graphene-Concrete Composites for Multifunctional Applications. Advanced Functional Materials, 28(23), Article 1705183. https://doi.org/10.1002/adfm.201705183

Journal Article Type Article
Acceptance Date Mar 2, 2018
Online Publication Date Apr 23, 2018
Publication Date Apr 23, 2018
Deposit Date Jul 5, 2018
Publicly Available Date Jul 6, 2018
Journal Advanced Functional Materials
Print ISSN 1616-301X
Electronic ISSN 1616-3028
Publisher Wiley
Peer Reviewed Peer Reviewed
Volume 28
Issue 23
Article Number 1705183
DOI https://doi.org/10.1002/adfm.201705183

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Publisher Licence URL
http://creativecommons.org/licenses/by/4.0/

Copyright Statement
© 2018 The Authors. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.





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