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Multifunctional Cement Mortars Enhanced with Graphene Nanoplatelets and Carbon Nanotubes

Overview
Journal Sensors (Basel)
Publisher MDPI
Specialty Biotechnology
Date 2021 Feb 12
PMID 33573281
Citations 3
Authors
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Abstract

Recent findings have brought forward the potential of carbon nano-species, especially nanotubes and graphene, to impart exceptional multifunctional potential to cement, offering simultaneous enhancement of mechanical, fracture mechanical and electrical properties. While available knowledge on the topic is still limited, there is a complete absence of direct comparisons of the potential of the nano-species to improve strength and toughness and provide multifunctionality to the mortars. The study offers a comprehensive overview of these potentials, for mortars modified with pure graphene nanoplatelets and carbon nanotubes at consistent, directly comparable, concentrations up to 1.2 wt.%. Testing included flexure under pure bending moments, axial compression, electrical resistivity measurements and fracture tests under three point bending configuration; the latter were also independently assessed by acoustic emission. Differences in documented properties and optimal concentrations associated with improved mechanical performance were directly compared and rationalized in terms of nanospecies morphology. Dramatic, statistically consistent improvements in fracture behavior, up to 10-fold of control values, were documented for specific nanofiller concentrations, indicating an excellent potential of the material system for contemporary smart construction applications. An exceptionally favorable comparison of acoustic emission and fracture energy data confirmed that the non-destructive technique can independently assess the fracture performance of mortars with exceptional precision.

Citing Articles

Development and Characterization of Lime-Based Mortars Modified with Graphene Nanoplatelets.

Pivak A, Pavlikova M, Zaleska M, Pavlik Z Materials (Basel). 2024; 17(20).

PMID: 39459727 PMC: 11509324. DOI: 10.3390/ma17205022.


Indirect prediction of graphene nanoplatelets-reinforced cementitious composites compressive strength by using machine learning approaches.

Fawad M, Alabduljabbar H, Farooq F, Najeh T, Gamil Y, Ahmed B Sci Rep. 2024; 14(1):14252.

PMID: 38902314 PMC: 11189940. DOI: 10.1038/s41598-024-64204-3.


Optimization of Graphene Nanoplatelets Dispersion and Its Performance in Cement Mortars.

Zhou Y, Wang Y, Gao T, Ling Y, Jiang N, Tawfek A Materials (Basel). 2022; 15(20).

PMID: 36295372 PMC: 9608562. DOI: 10.3390/ma15207308.

References
1.
Yu , Lourie , Dyer , Moloni , Kelly , Ruoff . Strength and breaking mechanism of multiwalled carbon nanotubes under tensile load. Science. 2000; 287(5453):637-40. DOI: 10.1126/science.287.5453.637. View

2.
Wang B, Jiang R, Wu Z . Investigation of the Mechanical Properties and Microstructure of Graphene Nanoplatelet-Cement Composite. Nanomaterials (Basel). 2017; 6(11). PMC: 5245736. DOI: 10.3390/nano6110200. View

3.
Peng B, Locascio M, Zapol P, Li S, Mielke S, Schatz G . Measurements of near-ultimate strength for multiwalled carbon nanotubes and irradiation-induced crosslinking improvements. Nat Nanotechnol. 2008; 3(10):626-31. DOI: 10.1038/nnano.2008.211. View

4.
Meoni A, DAlessandro A, Downey A, Garcia-Macias E, Rallini M, Materazzi A . An Experimental Study on Static and Dynamic Strain Sensitivity of Embeddable Smart Concrete Sensors Doped with Carbon Nanotubes for SHM of Large Structures. Sensors (Basel). 2018; 18(3). PMC: 5876626. DOI: 10.3390/s18030831. View

5.
Lee C, Wei X, Kysar J, Hone J . Measurement of the elastic properties and intrinsic strength of monolayer graphene. Science. 2008; 321(5887):385-8. DOI: 10.1126/science.1157996. View