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Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity

We here show that infiltrated bridging agents can convert inexpensively fabricated graphene platelet sheets into high-performance materials, thereby avoiding the need for a polymer matrix. Two types of bridging agents were investigated for interconnecting graphene sheets, which attach to sheets by e...

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Autores principales: Wan, Sijie, Li, Yuchen, Mu, Jiuke, Aliev, Ali E., Fang, Shaoli, Kotov, Nicholas A., Jiang, Lei, Cheng, Qunfeng, Baughman, Ray H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6003513/
https://www.ncbi.nlm.nih.gov/pubmed/29735659
http://dx.doi.org/10.1073/pnas.1719111115
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author Wan, Sijie
Li, Yuchen
Mu, Jiuke
Aliev, Ali E.
Fang, Shaoli
Kotov, Nicholas A.
Jiang, Lei
Cheng, Qunfeng
Baughman, Ray H.
author_facet Wan, Sijie
Li, Yuchen
Mu, Jiuke
Aliev, Ali E.
Fang, Shaoli
Kotov, Nicholas A.
Jiang, Lei
Cheng, Qunfeng
Baughman, Ray H.
author_sort Wan, Sijie
collection PubMed
description We here show that infiltrated bridging agents can convert inexpensively fabricated graphene platelet sheets into high-performance materials, thereby avoiding the need for a polymer matrix. Two types of bridging agents were investigated for interconnecting graphene sheets, which attach to sheets by either π–π bonding or covalent bonding. When applied alone, the π–π bonding agent is most effective. However, successive application of the optimized ratio of π–π bonding and covalent bonding agents provides graphene sheets with the highest strength, toughness, fatigue resistance, electrical conductivity, electromagnetic interference shielding efficiency, and resistance to ultrasonic dissolution. Raman spectroscopy measurements of stress transfer to graphene platelets allow us to decipher the mechanisms of property improvement. In addition, the degree of orientation of graphene platelets increases with increasing effectiveness of the bonding agents, and the interlayer spacing increases. Compared with other materials that are strong in all directions within a sheet, the realized tensile strength (945 MPa) of the resin-free graphene platelet sheets was higher than for carbon nanotube or graphene platelet composites, and comparable to that of commercially available carbon fiber composites. The toughness of these composites, containing the combination of π–π bonding and covalent bonding, was much higher than for these other materials having high strengths for all in-plane directions, thereby opening the path to materials design of layered nanocomposites using multiple types of quantitatively engineered chemical bonds between nanoscale building blocks.
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spelling pubmed-60035132018-06-18 Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity Wan, Sijie Li, Yuchen Mu, Jiuke Aliev, Ali E. Fang, Shaoli Kotov, Nicholas A. Jiang, Lei Cheng, Qunfeng Baughman, Ray H. Proc Natl Acad Sci U S A Physical Sciences We here show that infiltrated bridging agents can convert inexpensively fabricated graphene platelet sheets into high-performance materials, thereby avoiding the need for a polymer matrix. Two types of bridging agents were investigated for interconnecting graphene sheets, which attach to sheets by either π–π bonding or covalent bonding. When applied alone, the π–π bonding agent is most effective. However, successive application of the optimized ratio of π–π bonding and covalent bonding agents provides graphene sheets with the highest strength, toughness, fatigue resistance, electrical conductivity, electromagnetic interference shielding efficiency, and resistance to ultrasonic dissolution. Raman spectroscopy measurements of stress transfer to graphene platelets allow us to decipher the mechanisms of property improvement. In addition, the degree of orientation of graphene platelets increases with increasing effectiveness of the bonding agents, and the interlayer spacing increases. Compared with other materials that are strong in all directions within a sheet, the realized tensile strength (945 MPa) of the resin-free graphene platelet sheets was higher than for carbon nanotube or graphene platelet composites, and comparable to that of commercially available carbon fiber composites. The toughness of these composites, containing the combination of π–π bonding and covalent bonding, was much higher than for these other materials having high strengths for all in-plane directions, thereby opening the path to materials design of layered nanocomposites using multiple types of quantitatively engineered chemical bonds between nanoscale building blocks. National Academy of Sciences 2018-05-22 2018-05-07 /pmc/articles/PMC6003513/ /pubmed/29735659 http://dx.doi.org/10.1073/pnas.1719111115 Text en Copyright © 2018 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Wan, Sijie
Li, Yuchen
Mu, Jiuke
Aliev, Ali E.
Fang, Shaoli
Kotov, Nicholas A.
Jiang, Lei
Cheng, Qunfeng
Baughman, Ray H.
Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title_full Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title_fullStr Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title_full_unstemmed Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title_short Sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
title_sort sequentially bridged graphene sheets with high strength, toughness, and electrical conductivity
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6003513/
https://www.ncbi.nlm.nih.gov/pubmed/29735659
http://dx.doi.org/10.1073/pnas.1719111115
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