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A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites

Nano-filler reinforced polymer-based composites have attracted extensive attention in tribology; however, to date, it is still challenging to construct a favorable lubricating system with excellent compatibility, lubricity and durability using nano-filler reinforced polymer-based composites. Herein,...

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Autores principales: Jiao, Chengcheng, Cai, Tao, Chen, Huanyi, Ruan, Xinxin, Wang, Yandong, Gong, Ping, Li, Hua, Atkin, Rob, Yang, Feng, Zhao, Haichao, Nishimura, Kazuhito, Jiang, Nan, Yu, Jinhong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9890617/
https://www.ncbi.nlm.nih.gov/pubmed/36756511
http://dx.doi.org/10.1039/d2na00689h
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author Jiao, Chengcheng
Cai, Tao
Chen, Huanyi
Ruan, Xinxin
Wang, Yandong
Gong, Ping
Li, Hua
Atkin, Rob
Yang, Feng
Zhao, Haichao
Nishimura, Kazuhito
Jiang, Nan
Yu, Jinhong
author_facet Jiao, Chengcheng
Cai, Tao
Chen, Huanyi
Ruan, Xinxin
Wang, Yandong
Gong, Ping
Li, Hua
Atkin, Rob
Yang, Feng
Zhao, Haichao
Nishimura, Kazuhito
Jiang, Nan
Yu, Jinhong
author_sort Jiao, Chengcheng
collection PubMed
description Nano-filler reinforced polymer-based composites have attracted extensive attention in tribology; however, to date, it is still challenging to construct a favorable lubricating system with excellent compatibility, lubricity and durability using nano-filler reinforced polymer-based composites. Herein, sulfonated boron nitride nano-sheets (h-BN@PSDA) are prepared and used as nano-fillers for epoxy resins (EPs), to improve friction and wear along with thermal conductivity. Furthermore, inspired by the lubricating principle and structure of snail mucus, a solvent-free carbon dot-based nanofluid (F-CDs) is fabricated and used for the first time as the lubricant for h-BN@PSDA/EPs. Both poly (4-styrene sulfonate) and polyether amine grafted on the surface of F-CDs contribute to branched structures and multiple interfacial absorption effects. Extraordinarily low friction and wear are detected after long-term sliding. The average coefficient of friction and wear rate of h-BN@PSDA/EPs composites are reduced by 95.25% and 99.42% respectively, in the presence of the F-CD nanofluid, compared to that of EPs. Besides, the added h-BN nano-sheets increase the thermal conductivity (TC) of EPs from 0.178 to 0.194 W (m(−1) K(−1)). The distinguished lubrication performances are likely due to the formation of a hybrid nanostructure of 0D F-CDs and 2D h-BN@PSDA together with the “rolling–sliding” and “self-mending” effects of added F-CDs.
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spelling pubmed-98906172023-02-07 A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites Jiao, Chengcheng Cai, Tao Chen, Huanyi Ruan, Xinxin Wang, Yandong Gong, Ping Li, Hua Atkin, Rob Yang, Feng Zhao, Haichao Nishimura, Kazuhito Jiang, Nan Yu, Jinhong Nanoscale Adv Chemistry Nano-filler reinforced polymer-based composites have attracted extensive attention in tribology; however, to date, it is still challenging to construct a favorable lubricating system with excellent compatibility, lubricity and durability using nano-filler reinforced polymer-based composites. Herein, sulfonated boron nitride nano-sheets (h-BN@PSDA) are prepared and used as nano-fillers for epoxy resins (EPs), to improve friction and wear along with thermal conductivity. Furthermore, inspired by the lubricating principle and structure of snail mucus, a solvent-free carbon dot-based nanofluid (F-CDs) is fabricated and used for the first time as the lubricant for h-BN@PSDA/EPs. Both poly (4-styrene sulfonate) and polyether amine grafted on the surface of F-CDs contribute to branched structures and multiple interfacial absorption effects. Extraordinarily low friction and wear are detected after long-term sliding. The average coefficient of friction and wear rate of h-BN@PSDA/EPs composites are reduced by 95.25% and 99.42% respectively, in the presence of the F-CD nanofluid, compared to that of EPs. Besides, the added h-BN nano-sheets increase the thermal conductivity (TC) of EPs from 0.178 to 0.194 W (m(−1) K(−1)). The distinguished lubrication performances are likely due to the formation of a hybrid nanostructure of 0D F-CDs and 2D h-BN@PSDA together with the “rolling–sliding” and “self-mending” effects of added F-CDs. RSC 2023-01-03 /pmc/articles/PMC9890617/ /pubmed/36756511 http://dx.doi.org/10.1039/d2na00689h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jiao, Chengcheng
Cai, Tao
Chen, Huanyi
Ruan, Xinxin
Wang, Yandong
Gong, Ping
Li, Hua
Atkin, Rob
Yang, Feng
Zhao, Haichao
Nishimura, Kazuhito
Jiang, Nan
Yu, Jinhong
A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title_full A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title_fullStr A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title_full_unstemmed A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title_short A mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-BN reinforced epoxy composites
title_sort mucus-inspired solvent-free carbon dot-based nanofluid triggers significant tribological synergy for sulfonated h-bn reinforced epoxy composites
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9890617/
https://www.ncbi.nlm.nih.gov/pubmed/36756511
http://dx.doi.org/10.1039/d2na00689h
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